RH-ATT-MIB
AI MIB Summary
Standard SNMP MIB module defining data structures for RH-ATT-MIB.
156
Objects
Active
Status
2
Dependencies
Imported Objects
Objects
156 total| Object Name |
|---|
att-2 OBJECT IDENTIFIER .1.3.6.1.4.1.74 |
att-products OBJECT IDENTIFIER .1.3.6.1.4.1.74.1 |
att-rh1products OBJECT IDENTIFIER .1.3.6.1.4.1.74.1.6 |
att-rh1xe OBJECT IDENTIFIER .1.3.6.1.4.1.74.1.6.1 |
att-mgmt OBJECT IDENTIFIER .1.3.6.1.4.1.74.2 |
att-rh1mgt OBJECT IDENTIFIER .1.3.6.1.4.1.74.2.14 |
rh1BasicCtrlCapability OBJECT IDENTIFIER .1.3.6.1.4.1.74.2.14.1 |
rh1BasicCtrlRackMACThe rack's base MAC address. By definintion it may be
inferred that the next 3 consecutive MAC addresses are also
assigned to this rack. This object is included in all traps
to allow the manager to ascertain the hub's MAC address
(unique identifier). This is required for UDP/IP
communications across an internet since the source MAC
address is not preserved end-to-end. This is also the MAC
address used to send hub learn packets on the first segment.ro OCTET STRING .1.3.6.1.4.1.74.2.14.1.1 |
rh1BasicCtrlCardCapacityIndicates the number of groups that can be contained within
the rack. Valid range is 1-32. Within each managed rack, the
groups are uniquely numbered in the range from 1 to
rh1BasicCtrlCardCapacity. Each group corresponds to a
physical card in the rack.
The the rack hub agent (in the current chassis design)
returns 7 for this object.ro INTEGER .1.3.6.1.4.1.74.2.14.1.2 |
rh1BasicCtrlCardTableA list of card control entries. SEQUENCE OF Rh1BasicCtrlCardEntry .1.3.6.1.4.1.74.2.14.1.3 |
rh1BasicCtrlCardEntryEntry of the Basic Control Group Card table Rh1BasicCtrlCardEntry .1.3.6.1.4.1.74.2.14.1.3.1 |
rh1BasicCtrlCardIDIndex into the Basic Control Card Tablero INTEGER .1.3.6.1.4.1.74.2.14.1.3.1.1 |
rh1BasicCtrlNumberOfPortsThe number of ports is an 8 bit integer whose value points
to the port address of the highest numbered port. For the R1
and R2 Rack MPR boards, the value is 12. For an R2 MPR with
the optional FOMAU installed, the value is 13.ro INTEGER .1.3.6.1.4.1.74.2.14.1.3.1.2 |
rh1BasicCtrlPortTableA list of Basic port control entries. SEQUENCE OF Rh1BasicCtrlPortEntry .1.3.6.1.4.1.74.2.14.1.4 |
rh1BasicCtrlPortEntryEntry into the Basic Control Group Port table. Rh1BasicCtrlPortEntry .1.3.6.1.4.1.74.2.14.1.4.1 |
rh1BasicPortCtrlCardIDIndex by card into the basic control tablero INTEGER .1.3.6.1.4.1.74.2.14.1.4.1.1 |
rh1BasicCtrlPortIDIndex by port into the basic control tablero INTEGER .1.3.6.1.4.1.74.2.14.1.4.1.2 |
rh1BasicCtrlPortTypeThe type of port. All ports on a repeater are of the same
type at this layer. Different port types have different
delay characteristics and topological implications.
For the Rack Hub the value is 2.
Note that this object does not convey media information.
That type of information is outside the charter of the IEEE
HM group.ro Enumeration .1.3.6.1.4.1.74.2.14.1.4.1.3 |
rh1BasicCtrlPortCtrlThe administrator settable state of this port. Indicates
whether a port has been administratively disabled or whether
it is in the normal, enabled state. This allows a network
operator to disable a problem port or to deny the port
access to network resources for administrative reasons. A
disabled port neither transmits nor receives.
rh1BasicCtrlPortCtrl takes precedence over auto partition.
The auto partion/reconnection mechanism may or may not
continue to function while a port is disabled.rw Enumeration .1.3.6.1.4.1.74.2.14.1.4.1.4 |
rh1BasicCtrlAutoPartitionStateIndicates whether the port is currently partitioned by the
hub's auto-partition protection. (The Hub automatically
partitions a port if it is signaling continuous collision,
or greater than 30 consecutive collisions). It is the same
as jab indication.ro Enumeration .1.3.6.1.4.1.74.2.14.1.4.1.5 |
rh1SelfTestCapability OBJECT IDENTIFIER .1.3.6.1.4.1.74.2.14.2 |
rh1SelfTestResetRackThis action initializes the Rack. This reset is the
software equivalent of a power up reset. This action may
result in the loss of packets.rw Enumeration .1.3.6.1.4.1.74.2.14.2.1 |
rh1SelfTestExecuteSelfTest1Causes the Rack to initiate the non-disruptive self-test
function. The hub performs a non-disruptive self-test that
has the following characteristics:
- The test changes neither the state of the hub nor
management information about the hub.
- The test does not inject packets onto any segment.
- The test does not prevent the relay of any packets.
Test results are conveyed by the hubHealth objects. Note,
the IEEE specification does not specify the components to be
tested.rw Enumeration .1.3.6.1.4.1.74.2.14.2.2 |
rh1SelfTestExecuteSelfTest2Causes the Rack to initiate the disruptive self-test
function. The hub performs a disruptive self-test that has
the following characteristics:
- The test resets the hub without affecting management
information about the hub.
- The test does not inject packets onto any segment.
- Packets sent during the test may or may not be relayed.
Test results are conveyed by the hubHealth objects.rw Enumeration .1.3.6.1.4.1.74.2.14.2.3 |
rh1SelfTestRackHealthStateThe health state object indicates the operational state of
the rack. This object will also map to the color of the
rack status LED, where state ok(2) is green, and state
failure(3) is red.ro Enumeration .1.3.6.1.4.1.74.2.14.2.4 |
rh1SelfTestRackHealthDataThis object gives data on the health of all major rack
components. The object is an octet string with a size of
103 octets broken 6 sections:
Reason for trap
Chassis failure conditions
Debugging data
Test result map
Card failure map
Diagnostic results registers
The sections are encoded as follows:
Octet Definition
Reason for trap
0 Reason for trap
0 no trap
1 non-disruptive test
2 disruptive test
3 temperature condition
4 fan failure
5 power supply failure
6 Deadman timer expired
7 Software panic occured
8 Sanity Reset occured
9 Configuration checksum failure
Chassis failure conditions
1 Temperature condition
0 OK
1 High
2 Fan condition
0 OK
1 Fan 1 failed
2 Fan 2 failed
3 Fan 1 and Fan 2 failed
3 Power supply condition
0 OK
1 Supply 1 failed
2 Supply 2 failed
Debugging data
4-5 Software panic counters
6-7 ID last module panic
8-9 Line number of last panic
10-13 NAU control dead man timer
14-17 Sanity reset counter
18 NVRAM configuration checksum
Test Result Map (any bit set to 1 indicates the test
failed on at least one card)
The map supports a total of 32 tests
of which 17 are reserved for future use
19 Disruptive Rack tests (Self Test 2)
bit
Test 1 0 SRAM R/W
Test 2 1 SRAM Address
Test 3 2 MPR Registers
Test 4 3 Security R/W
Test 5 4 NAU Memory R/W
Test 6 5 NAU Memory Address
Test 7 6 NAU IRQ
Test 8 7 NAU Self Test
20
Test 9 0 NAU Loopback
Test 10 1 NAU Registers
Test 11 2 Slot 0 EAROM
Test 12-16 3-7 Reserved for future use
Non-Disruptive Rack tests (Self Test 1)
bit
21
Test 17 0 SRAM R/W
Test 18 1 SRAM Address
Test 19 2 Flash Checksum
Test 20 3 Flash Read
Test 21 4 NAU I/O
Test 22 5 NAU Memory R/W
Test 23-24 6-7 Reserved for future use
22
Test 25-32 0-7 Reserved for future use
Card Failure Map
For each test in the Test Result map, there is are two
corresponding octects in the card failure map. The octects
are positionally encoded to represent the cards in the rack,
if a bit is set (1) it indicates which card failed that test
(more than one bit may be set). Bit 0 is the Bus Logic Unit
(slot 0), and bits 1 to 15 are cards 1 to 15 respectively
(note the SmartHUB XE only supports 7 cards at this time)
Octet
23, 24 Test 1 card results
25, 26 Test 2 card results
27, 28 Test 3 card results
29, 30 Test 4 card results
31, 32 Test 5 card results
33, 34 Test 6 card results
35, 36 Test 7 card results
37, 38 Test 8 card results
39, 40 Test 9 card results
41, 42 Test 10 card results
43, 33 Test 11 card results
45, 46 Test 12 card results
47, 48 Test 13 card results
49, 50 Test 14 card results
51, 52 Test 15 card results
53, 54 Test 16 card results
55, 56 Test 17 card results
57, 58 Test 18 card results
59, 60 Test 19 card results
61, 62 Test 20 card results
63, 64 Test 21 card results
65, 66 Test 22 card results
67, 68 Test 23 card results
69, 70 Test 24 card results
71, 72 Test 25 card results
73, 74 Test 26 card results
75, 76 Test 27 card results
77, 78 Test 28 card results
79, 80 Test 29 card results
81, 82 Test 30 card results
83, 84 Test 31 card results
85, 86 Test 32 card results
Diagnostic Register Results
All boards also support a diagnostic register which contains
a code corresponding to the current health of that board.
(This is especially useful for non-MPR boards which don't
report other diagnostics through this MIB)
Definitions for diagnostic register:
0x00 to 0xEF Vendor specific
Display as 'error code: xx'
0xF0 Power on reset value
After timeout X1 Display as 'reset failure'
0xF1 Diagnostics passed
Display as 'passed'
0xF2 General failure Major
Display as 'failed'
0xF3 General failure Minor
Display as 'failed'
0xF4 Checksum error
Display as 'checksum error'
(note: this value for a bad flash image)
0xF5 Configuration error
Display as 'configuration error'
0xF6 to 0xFD Reserved for future use
Display as 'error code: xx'
0xFE Running diagnostics, extended timeout
On timeout X2 display as 'diagnostic timeout'
0xFF Running diagnostics, standard timeout
On timeout X3 display as 'diagnostic timeout'
Octet
87 Slot 0 diagnostic register
88 Slot 1 diagnostic register
89 Slot 2 diagnostic register
90 Slot 3 diagnostic register
91 Slot 4 diagnostic register
92 Slot 5 diagnostic register
93 Slot 6 diagnostic register
94 Slot 7 diagnostic register
95 Slot 8 diagnostic register
96 Slot 9 diagnostic register
97 Slot 10 diagnostic register
98 Slot 11 diagnostic register
99 Slot 12 diagnostic register
100 Slot 13 diagnostic register
101 Slot 14 diagnostic register
102 Slot 15 diagnostic registerro OCTET STRING .1.3.6.1.4.1.74.2.14.2.5 |
rh1SelfTestCardTableA list of self test entries. SEQUENCE OF Rh1SelfTestCardEntry .1.3.6.1.4.1.74.2.14.2.6 |
rh1SelfTestCardEntryEntry into the Self Test Capability Card table. Rh1SelfTestCardEntry .1.3.6.1.4.1.74.2.14.2.6.1 |
rh1SelfTestCardIDIndex into the self test card table.ro INTEGER .1.3.6.1.4.1.74.2.14.2.6.1.1 |
rh1SelfTestCardResetTimeStampA snapshot of sysUpTime when the card was last reset.ro TimeTicks (SNMPv2-SMI) .1.3.6.1.4.1.74.2.14.2.6.1.2 |
rh1SelfTestResetCardCauses a reset of all functions of the selected card. If
the selected card is the rack manager, the agent and
volatile information is reset. Packets may be lost.rw Enumeration .1.3.6.1.4.1.74.2.14.2.6.1.3 |
rh1SelfTestResetMPRFor an MPR card, causes a selective reset of the MPR portion
only. No management information is changed, however packets
may be lost.rw Enumeration .1.3.6.1.4.1.74.2.14.2.6.1.4 |
rh1SelfTestExecuteCardSelfTest1Causes the card to initiate the non-disruptive self-test
function. The non-disruptive self-test has the following
characteristics:
- The test changes neither the state of the card nor
management information about the card.
- The test does not inject packets onto any segment.
- The test does not prevent the relay of any packets.
Test results are conveyed by the cardHealth objects.rw Enumeration .1.3.6.1.4.1.74.2.14.2.6.1.5 |
rh1SelfTestExecuteCardSelfTest2Causes the card to initiate the disruptive self-test
function. The disruptive self-test has the following
characteristics:
- The test resets the card without affecting management
information about the card.
- The test does not inject packets onto any segment.
- Packets sent during the test may or may not be relayed.
Test results are conveyed by the cardHealth objects.rw Enumeration .1.3.6.1.4.1.74.2.14.2.6.1.6 |
rh1SelfTestCardHealthStateState of a card.ro Enumeration .1.3.6.1.4.1.74.2.14.2.6.1.7 |
rh1SelfTestCardHealthDataThis object gives data on the health of each 10BaseT card in
the rack. The object is an octet string with a size of 3
octet, encoded as follows:
Octet Definition
0 Reason for trap
1 Result of last non-disruptive test
2 Result of last disruptive test
1 Disruptive test result (Self Test 2)
0 Sram R/W
1 Sram Address
2 Timer 1
3-7 Reserved for future use
2 Non-disruptive test result (Self Test 1)
0 Sram R/W
1 Sram Address
2 Flash Checksum
3 Flash Read
4-7 Reserve for future usero OCTET STRING .1.3.6.1.4.1.74.2.14.2.6.1.8 |
rh1PerfMonCapability OBJECT IDENTIFIER .1.3.6.1.4.1.74.2.14.3 |
rh1PerfMonSegmentTableA list of Performance Monitoring entries. Range from 1 to
3. Note, since these objects represent the sum of values
from several cards in the rack, each time any card in a
given segment is added or removed, the counters for all
cards on that segment are reset. SEQUENCE OF Rh1PerfMonSegmentEntry .1.3.6.1.4.1.74.2.14.3.1 |
rh1PerfMonSegmentEntryEntry into the Performance Monitor Segment Table Rh1PerfMonSegmentEntry .1.3.6.1.4.1.74.2.14.3.1.1 |
rh1PerfMonSegmentIDIndex by segment into the Performance Monitor table.
This value available even if there are no cards on the
segment.ro INTEGER .1.3.6.1.4.1.74.2.14.3.1.1.1 |
rh1PerfMonSegFrameSize1BoundThe upper boundary for the first quantization band (the
lower bound is 64 by definition). This boundary applies to
both rh1PerfMonSegTotalBand1Frames and
rh1PerfMonSegBand1Frames. The value may range from 64 to
1518, but the values of Size1Bound to Size4Bound must define
non-overlapping bands (ie they must be an increasing series
of values).
This value available even if there are no cards on the
segment.rw INTEGER .1.3.6.1.4.1.74.2.14.3.1.1.2 |
rh1PerfMonSegFrameSize2BoundThe upper boundary for the second quantization band. This
boundary applies to both rh1PerfMonSegTotalBand2Frames and
rh1PerfMonSegBand2Frames. The value may range from 64 to
1518, but the values of Size1Bound to Size4Bound must define
non-overlapping bands (ie they must be an increasing series
of values).
This value available even if there are no cards on the
segment.rw INTEGER .1.3.6.1.4.1.74.2.14.3.1.1.3 |
rh1PerfMonSegFrameSize3BoundThe upper boundary for the third quantization band. This
boundary applies to both rh1PerfMonSegTotalBand3Frames and
rh1PerfMonSegBand3Frames. The value may range from 64 to
1518, but the values of Size1Bound to Size4Bound must define
non-overlapping bands (ie they must be an increasing series
of values).
This value available even if there are no cards on the
segment.rw INTEGER .1.3.6.1.4.1.74.2.14.3.1.1.4 |
rh1PerfMonSegFrameSize4BoundThe upper boundary for the fourth quantization
band (and the lower bound for the fifth quantization band).
This boundary applies to both rh1PerfMonSegTotalBand4Frames
and rh1PerfMonSegBand4Frames. The value may range from 64
to 1518, but the values of Size1Bound to Size4Bound must
define non-overlapping bands (ie they must be an increasing
series of values).
This value available even if there are no cards on the
segment.rw INTEGER .1.3.6.1.4.1.74.2.14.3.1.1.5 |
rh1PerfMonSegTotalFramesProcessedOkThe number of valid frames processed through the segment. It
does not include frames received with frame-too-long, FCS,
length, or alignment errors, or frames lost due to internal
errors. The approximate minimum time for counter rollover is
73 hours.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.6 |
rh1PerfMonSegTotalOctetsProcessedOkThe total number of octets processed through the segment.
Octets counted are the number of data and padding octets in
frames that are successfully received. The approximate
minimum time for counter rollover is 58 minutes.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.7 |
rh1PerfMonSegTotalCollisionsThe total number of times the transmit collision state is
entered, no matter how many ports are involved. The counter
is not incremented for receive collisions. The approximate
minimum time for counter rollover is 16 hours.
This object allows a single reading of collisions/segment
rather than polling each of the ports.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.8 |
rh1PerfMonSegTotalLateCollisionsCounts the number of times that a collision has been
detected on this port later than 512 bit times into the
transmitted packet. A late collision is counted twice, as
both a collision and as a late collision.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.9 |
rh1PerfMonSegTotalRuntsCounts the number of collision fragments longer than 96 bits
and shorter than a legal packet, detected on this segment.
(Runts do not indicate a problem in the network).ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.10 |
rh1PerfMonSegTotalShortEventsCounts the number of fragments received on this segment.
These fragments, less than 96-n bits long, indicate an
external noise hit (a problem on the network).ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.11 |
rh1PerfMonSegTotalFrameTooLongsCounts the number of frames received through this segment
that are greater than 1518 bytes long.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.12 |
rh1PerfMonSegTotalAutoPartitionsThe total number of times ports on this segment (in this
chassis) have been autopartitioned.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.13 |
rh1PerfMonSegTotalLongFragmentsThe total number of fragments received by this segment.
LongFragments are any frames greater or equal to 96 bits but
less than 512 bits (which includes runt frames). The
fragment count also includes any other length frames in
which the start of frame delimiter is not present.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.14 |
rh1PerfMonSegTotalFifoErrorsCounts the total number of times that a packet has been
received by this segment with the transmission frequency
(data rate) detectably out of spec. The exact degree is
unspecified and vendor specific.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.15 |
rh1PerfMonSegTotalErrorEnergyThe total length in bytes of all error energy. Used to
calculate network utilization. Errors included in this
counter are: late collisions, long frames, long fragments,
fifo errors, and manchester code violations.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.16 |
rh1PerfMonSegTotalNondataEnergyThe total length in bytes of all non-data energy. Used to
calculate network utilization. Non-data is defined as:
collisions, runts, and short events.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.17 |
rh1PerfMonSegTotalManchesterViolationsThe number of manchester code violations.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.18 |
rh1PerfMonSegTotalBand1FramesThe number of frames transmitted from this segment
summarized into packet size bands. The sizes are with
respect to LLC data.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.19 |
rh1PerfMonSegTotalBand2FramesThe number of frames transmitted from this segment
summarized into packet size bands. The sizes are with
respect to LLC data.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.20 |
rh1PerfMonSegTotalBand3FramesThe number of frames transmitted from this segment
summarized into packet size bands. The sizes are with
respect to LLC data.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.21 |
rh1PerfMonSegTotalBand4FramesThe number of frames transmitted from this segment
summarized into packet size bands. The sizes are with
respect to LLC data.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.22 |
rh1PerfMonSegTotalBand5FramesThe number of frames transmitted from this segment
summarized into packet size bands. The sizes are with
respect to LLC data.ro Counter .1.3.6.1.4.1.74.2.14.3.1.1.23 |
rh1PerfMonSegCountsThis object aggregates selected stats into one coded bit
string. The definition of each position in the string is:
Statistics counts for this segment. The octet string is
positionally encoded in four octet increments as follows:
Octet position Object
1-4 segFramesProcessedOk
5-8 segOctetsProcessedOk
9-12 segCollisions
13-16 segLateCollisions
17-20 segRunts
21-14 segShortEvents
25-18 segFrameTooLongs
29-32 segAutoPartitions
33-36 segLongFragments
37-40 segFifoErrors
41-44 segErrorEnergy
45-48 segNondataEnergy
49-52 segManchesterCodeViolations
Specifications for the values contained in this MIB object
can be found in the specifications for the individual
objects.ro OCTET STRING .1.3.6.1.4.1.74.2.14.3.1.1.24 |
rh1PerfMonPortTableA list of Performance Monitor port entries. SEQUENCE OF Rh1PerfMonPortEntry .1.3.6.1.4.1.74.2.14.3.2 |
rh1PerfMonPortEntryEntry into the Performance Monitor Port table Rh1PerfMonPortEntry .1.3.6.1.4.1.74.2.14.3.2.1 |
rh1PerfMonCardIDAn index into the performance monitoring port table.ro INTEGER .1.3.6.1.4.1.74.2.14.3.2.1.1 |
rh1PerfMonPortIDAn index into the performance monitoring port table.ro INTEGER .1.3.6.1.4.1.74.2.14.3.2.1.2 |
rh1PerfMonFramesReceivedOkA representation of the total frames of legal length that
have not been corrupted in transmission. These frames can be
encoded and decoded by commonly available MACs and provides
a measure of network bandwidth being used. This count is
equal to the sum of framesReceivedOk and
outOfRangeLengthFieldFrames. It does not include frames
received with frames-too-long, alignment errors, frames lost
due to internal MAC sublayer errors, runts, or shortEvents.
The approximate minimum time to rollover is 81 hours.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.3 |
rh1PerfMonOctetsReceivedOkThe number of octets received on this port.
Octets counted are the number of data and padding octets in
frames that are successfully received. The approximate
minimum time for counter rollover is 58 minutes.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.4 |
rh1PerfMonCollisionsCounts the number of times that a collision has been
detected on this port later than 512 bit times into the
transmitted packet. A late collision is counted twice, as
both a collision and as a late collision.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.5 |
rh1PerfMonLateCollisionsCounts the number of times that a collision has been
detected on this port later than 512 bit times into the
transmitted packet. A late collision is counted twice, as
both a collision and as a late collision.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.6 |
rh1PerfMonRuntsCounts the number of collision fragments longer than a
shortEvent and shorter than a legal packet, detected on this
port. (Runts do not indicate a problem in the network).ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.7 |
rh1PerfMonShortEventsCounts the number of fragments received on this port. These
fragments, less than 64 +/- 10 bits long, indicate an
external noise hit (a problem on the network).ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.8 |
rh1PerfMonFrameTooLongsCounts the number of frames received through this port that
are greater than 1518 octets long.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.9 |
rh1PerfMonAutoPartitionsCounts the number of times that the repeater has
automatically partitioned this port.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.10 |
rh1PerfMonLongFragmentsThe total number of fragments received by this segment.
LongFragments are any frames greater or equal to 96 bits but
less than 512 bits (which includes runt frames). The
fragment count also includes any other length frames in
which the start of frame delimiter is not present.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.11 |
rh1PerfMonFifoErrorsCounts the number of times that a packet has been received
by this port with the transmission frequency (data rate)
detectably out of spec. The exact degree is unspecified and
vendor specific. This object is also referred to as 'number
of FIFO errors'.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.12 |
rh1PerfMonFramesTransmittedOkTransmitted frames are the number of valid 'authorized'
frames transmitted out the port. Authorized frames are those
for which:
1) port authorized type equals 'single' and the destination
address equals the port authorized mac address
(or)
2) port authorized type equals 'multiple' or 'hub'.
If the port authorized type equals 'none', no frames are
counted as 'authorized', and are therefore not counted as
'transmitted' frames.
The approximate minimum time for counter rollover is 73
hours.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.13 |
rh1PerfMonOctetsTransmittedOkThe number of octets transmitted from the hub on this port.
Octets counted are the number of data and padding octets in
frames that are successfully received (note definition above
of frames successfully received). The approximate minimum
time for counter rollover is 58 minutes.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.14 |
rh1PerfMonErrorEnergyThe total length in bytes of all error energy. Used to
calculate network utilization. Errors included in this
counter are: late collisions, long frames, long fragments,
fifo errors, and manchester code violations.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.15 |
rh1PerfMonNondataEnergyThe total length in bytes of all non-data energy. Used to
calculate network utilization. Non-data is defined as:
collisions, runts and short events.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.16 |
rh1PerfMonManchesterViolationsThe number of manchester code violations.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.17 |
rh1PerfMonBand1FramesThe number of frames transmitted from this port (e.g., to a
workstation) summarized into packet size bands. The sizes
are with respect to LLC data.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.18 |
rh1PerfMonBand2FramesThe number of frames transmitted from this port
(e.g., to a workstation) summarized into packet size bands.
The sizes are with respect to LLC data.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.19 |
rh1PerfMonBand3FramesThe number of frames transmitted from this port
(e.g., to a workstation) summarized into packet size bands.
The sizes are with respect to LLC data.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.20 |
rh1PerfMonBand4FramesThe number of frames transmitted from this port (e.g., to a
workstation) summarized into packet size bands. The sizes
are with respect to LLC data.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.21 |
rh1PerfMonBand5FramesThe number of frames transmitted from this port (e.g., to a
workstation) summarized into packet size bands. The sizes
are with respect to LLC data.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.22 |
rh1PerfMonPortCountsThis object aggregates selected stats into one coded bit
string. The definition of each position in the string is:
Octet position Object
1-4 FramesReceivedOk
5-8 OctetsReceivedOk
9-12 Collisions
13-16 LateCollisions
17-20 Runts
21-14 ShortEvents
25-18 FrameTooLongs
29-32 AutoPartitions
33-36 LongFragments
37-40 FifoErrors
41-44 FramesTransmittedOK
45-48 OctetsTransmitedOK
49-52 ErrorEnergy
53-56 NondataEnergy
57-60 ManchesterCodeViolations
Specifications for the values contained in this MIB object
can be found in the specifications for the individual
objects.ro OCTET STRING .1.3.6.1.4.1.74.2.14.3.2.1.23 |
rh1PerfMonFrameSize1BoundA duplicate entry of rh1PerfMonSegFrameSizeXBound allow
graphing of port stats with mimimum number of gets.ro INTEGER .1.3.6.1.4.1.74.2.14.3.2.1.24 |
rh1PerfMonFrameSize2BoundA duplicate entry of rh1PerfMonSegFrameSizeXBound allow
graphing of port stats with mimimum number of gets.ro INTEGER .1.3.6.1.4.1.74.2.14.3.2.1.25 |
rh1PerfMonFrameSize3BoundA duplicate entry of rh1PerfMonSegFrameSizeXBound allow
graphing of port stats with mimimum number of gets.ro INTEGER .1.3.6.1.4.1.74.2.14.3.2.1.26 |
rh1PerfMonFrameSize4BoundA duplicate entry of rh1PerfMonSegFrameSizeXBound allow
graphing of port stats with mimimum number of gets.ro Counter .1.3.6.1.4.1.74.2.14.3.2.1.27 |
rh1DownloadCapability OBJECT IDENTIFIER .1.3.6.1.4.1.74.2.14.4 |
rh1DownloadImageFileThe file that the Rack requests to be downloaded from the
server. This object's value is the full or relative path of
the file on the TFTP server containing the image to be
downloaded. The syntax of the string depends upon the
operating system of the TFTP host. (Forward slashes,
backslashes, MS-DOS drive indicators, and 'at' signs may be
in the string.) This object is reset after re-boot.rw OCTET STRING .1.3.6.1.4.1.74.2.14.4.1 |
rh1DownloadIpAddrThe IP address the Rack sends to request a download. A zero
value indicates that it has not been set. This object is
re-set after reboot.rw IpAddress .1.3.6.1.4.1.74.2.14.4.2 |
rh1DownloadMacAddrThe MAC address of a non-UDP/IP download server. If the
either rh1EnhCtrlRackIpAddr or rh1DownloadIpAddr is not set
(ie 0.0.0.0), then this address will be used to download
using TFTP over Ethernet. This object is reset after re-
boot.rw OCTET STRING .1.3.6.1.4.1.74.2.14.4.3 |
rh1DownloadCardTableA list of Download capability entries. SEQUENCE OF Rh1DownloadCardEntry .1.3.6.1.4.1.74.2.14.4.4 |
rh1DownloadCardEntryEntry into the download capability card table. Rh1DownloadCardEntry .1.3.6.1.4.1.74.2.14.4.4.1 |
rh1DownloadCardIDIndex into the download execution table.ro INTEGER .1.3.6.1.4.1.74.2.14.4.4.1.1 |
rh1DownloadExecuteSetting the value to 2 causes the rack to initiate a
download request to the Download Server for the selected
card. After a download, the card is reset.rw Enumeration .1.3.6.1.4.1.74.2.14.4.4.1.2 |
rh1AddrTrackCapability OBJECT IDENTIFIER .1.3.6.1.4.1.74.2.14.5 |
rh1AddrTrackSegmentTableA list of Address tracking entries. SEQUENCE OF Rh1AddrTrackEntry .1.3.6.1.4.1.74.2.14.5.1 |
rh1AddrTrackEntryEntry into the address tracking segment table. Rh1AddrTrackEntry .1.3.6.1.4.1.74.2.14.5.1.1 |
rh1AddrTrackSegmentIDIndex into the address tracking segement tablero INTEGER .1.3.6.1.4.1.74.2.14.5.1.1.1 |
rh1AddrTrackSendHubLearnWriting (2) is used to cause the special map learn frame to
be sent.rw Enumeration .1.3.6.1.4.1.74.2.14.5.1.1.2 |
rh1AddrTrackSendHubLearnCtrlUsed enable/inhibit the use of the special map learn frames.rw Enumeration .1.3.6.1.4.1.74.2.14.5.1.1.3 |
rh1AddrTrackPortTableA list of address tracking entries. SEQUENCE OF Rh1AddrTrackPortEntry .1.3.6.1.4.1.74.2.14.5.2 |
rh1AddrTrackPortEntryEntry into the address tracking port table Rh1AddrTrackPortEntry .1.3.6.1.4.1.74.2.14.5.2.1 |
rh1AddrTrackCardIDAn index into the address tracking port table.ro INTEGER .1.3.6.1.4.1.74.2.14.5.2.1.1 |
rh1AddrTrackPortIDAn index into the address tracking port table.ro INTEGER .1.3.6.1.4.1.74.2.14.5.2.1.2 |
rh1AddrTrackDetectedMacAddrThis is the MAC address that the Rack has detected on this
port. The address isn't recorded if there is a CRC error;
but is recorded if the length field is incorrect or the
frame too long. For 'singly', 'multiply' and 'none'
connection types, this address is the last source address.
For 'hub connected' connections, this is the MAC address of
the connected hub.ro OCTET STRING .1.3.6.1.4.1.74.2.14.5.2.1.3 |
rh1AddrTrackDetectedAddrTypeThe detected type of connectivity associated with this port.ro Enumeration .1.3.6.1.4.1.74.2.14.5.2.1.4 |
rh1AddrTrackAuthMacAddrThis is the authorized MAC address the hub was configured
with for this port. The value is settable to allow the
administration station to establish a source address for
security reasons.rw OCTET STRING .1.3.6.1.4.1.74.2.14.5.2.1.5 |
rh1AddrTrackAuthAddrTypeThe authorized connectivity associated with this port.rw Enumeration .1.3.6.1.4.1.74.2.14.5.2.1.6 |
rh1AddrTrackNewHubAddrIndicates that a new, adjacent hub has been detected. The
MAC address of that hub is included. This object included
in traps only. OCTET STRING .1.3.6.1.4.1.74.2.14.5.2.1.7 |
rh1EnhCtrlCapability OBJECT IDENTIFIER .1.3.6.1.4.1.74.2.14.6 |
rh1EnhCtrlResetRackConfigThis action resets all configuration data to be equal to the
factory default values stored in firmware. This action also
causes a reset. Note, that when new cards are inserted, or
cards are moved, the configuration information associated
with the slot is used.rw Enumeration .1.3.6.1.4.1.74.2.14.6.1 |
rh1EnhCtrlRackVersionThe hardware release number for the rack which is made up of
slot 0, and the backplane. The numbers are in the format
x backplane
y.m slot zero
This numbers x and y will also be reflected in the text
string associated with the sysDesc object.ro OCTET STRING .1.3.6.1.4.1.74.2.14.6.2 |
rh1EnhCtrlPowerTableInformation about the two power supply 'slots' SEQUENCE OF Rh1EnhCtrlPowerEntry .1.3.6.1.4.1.74.2.14.6.3 |
rh1EnhCtrlPowerEntryEntry into the Enhanced Control Power supply table Rh1EnhCtrlPowerEntry .1.3.6.1.4.1.74.2.14.6.3.1 |
rh1EnhCtrlPowerIDIndex into the power supply table.ro INTEGER .1.3.6.1.4.1.74.2.14.6.3.1.1 |
rh1EnhCtrlPowerTypeFor each of the two 'slots' for a power supply, this object
defines what type of power supply is installed.
Type none means no supply is present.
Type alternate means that a supply other than the standard
supply is installed.
Type standard is a single slot fault tolerant unit. If two
standard supplies are detected, the rack has power supply
redundancy installed.ro Enumeration .1.3.6.1.4.1.74.2.14.6.3.1.2 |
rh1EnhCtrlCardMapA string of bits which reflects the current configuration of
units which are viewed by group managed objects. In each
bit position, a 1 is present, and a 0 is not present. The
low order bit (bit 0) represents slot 0 which cannot be a
repeater card, hence it is always 0, because this object
applies to 10baseT cards only. Bit 1 is slot one etc.ro OCTET STRING .1.3.6.1.4.1.74.2.14.6.4 |
rh1EnhCtrlRackMapThe card type for each card in the rack, contained in one
string. For each card (not including slot 0), there are 5
octets which define manufacturer, board type, board variant,
if the board has rackmaster capability, and f/w base
(applicable to 10Base-T only).
Format of the octet string is:
octet
1 bit 0-3 F board present
3 board present but non-functional
0 no board present
bit 4-7 F rack master capable
0 not master capable
2-3 manufacturer backplane registers
4-5 type/variant backplane registers
(bit 3-7 of variant = f/w base)
By convention, boards with the same type and f/w base have a
common download file image even if the variant is different.ro OCTET STRING .1.3.6.1.4.1.74.2.14.6.5 |
rh1EnhCtrlRackmasterAn index (rh1EnhCrlCardID) to the current rack master.ro INTEGER .1.3.6.1.4.1.74.2.14.6.6 |
rh1EnhCtrlLastRackmasterAn index (rh1EnhCrlCardID) to the last rack master. A non
zero value here means that since the last reset, a card
successfully became rack master, then relinquished control.ro INTEGER .1.3.6.1.4.1.74.2.14.6.7 |
rh1EnhCtrlGatewayIpAddrThe IP address of a gateway server to which all IP packets
will be sent whose destination network is not the local
network.rw IpAddress .1.3.6.1.4.1.74.2.14.6.8 |
rh1EnhCtrlNetworkMaskThe subnet mask that is used in the comparison of the hub IP
address to the destination IP address to determine whether
or not the destination IP address is on the local
subnetwork. If it is not, and if a gateway IP address has
been administered, then the gateway will be used to deliver
the packet.
Although this object is registered in the AT&T proprietary
object space, it is the same as the RFC 1066 object:
ipAdEntNetMask. The standard object is not implemented since
the entire 'ip' group cannot be implemented at this time.rw IpAddress .1.3.6.1.4.1.74.2.14.6.9 |
rh1EnhCtrlRackIpAddrThe rackmaster's IP address. This object's value is the IP
address in dot notation.rw IpAddress .1.3.6.1.4.1.74.2.14.6.10 |
rh1EnhCtrlRs232StateIndicates whether the RS-232 port is active (i.e., something
connected) and if active, whether the user is currently
logged in.ro Enumeration .1.3.6.1.4.1.74.2.14.6.11 |
rh1EnhCtrlRs232DataRateIndicates the data rate the RS-232 port is set at.rw Enumeration .1.3.6.1.4.1.74.2.14.6.12 |
rh1EnhCtrlTrapCountPeriodCtrlThe transmission period (seconds) of the Trap(count) packet.
The valid range of timer values is 1 through 3,600 (1 hour).
A value of all 0's causes the packet to never be sent.
Periodic transmission of this trap is used as a keepalive
function.rw INTEGER (2) .1.3.6.1.4.1.74.2.14.6.13 |
rh1EnhCtrlFlashRackStatusLEDWhen set to FLASH, the main functional status indicator, an
LED labelled Rack Status will flash at a slow rate (about 30
times per minute). This object allows a management station
to mark an arbitrary card and is intended to facilitate
servicing operations (although the significance of the
flashing LED is at the discretion of the management station
operator). Flashing applies to all LED colors (red, amber,
and green) and does not stop the LED from changing color.
This object is reset to NOFLASH after an agent reset.rw Enumeration .1.3.6.1.4.1.74.2.14.6.14 |
rh1EnhCtrlSendTrapConfigWriting (2) causes the trap(config) packet to be sent.rw Enumeration .1.3.6.1.4.1.74.2.14.6.15 |
rh1EnhCtrlMngrTableA list of addresses for multiple management station which
get traps. SEQUENCE OF Rh1EnhCtrlMngrEntry .1.3.6.1.4.1.74.2.14.6.16 |
rh1EnhCtrlMngrEntryEntry into the Enhanced Control Manager table Rh1EnhCtrlMngrEntry .1.3.6.1.4.1.74.2.14.6.16.1 |
rh1EnhCtrlMngrIDIndex into the manager table.ro INTEGER .1.3.6.1.4.1.74.2.14.6.16.1.1 |
rh1EnhCtrlTrapMacAddrThe MAC address(es) to which hubs send Trap packets if the
IP address is not set. The single default is a multicast
address. That address might be changed from the default in
order to create multiple logical subnetworks each handled
with a different management station, and to improve
security. Up to four values are supported.rw OCTET STRING .1.3.6.1.4.1.74.2.14.6.16.1.2 |
rh1EnhCtrlTrapIpAddrThe IP address(es) to which hubs send Trap packets. 0.0.0.0
defines not set. Up to four values are supported.rw IpAddress .1.3.6.1.4.1.74.2.14.6.16.1.3 |
rh1EnhCtrlCardTableA list of enhanced control entries. SEQUENCE OF Rh1EnhCtrlCardEntry .1.3.6.1.4.1.74.2.14.6.17 |
rh1EnhCtrlCardEntryEntry into the Enhanced Control Card table Rh1EnhCtrlCardEntry .1.3.6.1.4.1.74.2.14.6.17.1 |
rh1EnhCtrlCardIDIndex into the Enhanced control card table.ro INTEGER .1.3.6.1.4.1.74.2.14.6.17.1.1 |
rh1EnhCtrlSegmentThe backplane segment which the card is attached to. This
information is coded into the first three bits (0-2) of the
octet. Set (1) means there is a connection, and reset (0)
means there is no connection. Bit 0 is segment 1 (primary
administration segment) and bits 1 and 2 are segments 2 and
3 respectively.rw OCTET STRING .1.3.6.1.4.1.74.2.14.6.17.1.2 |
rh1EnhCtrlCardVersionThe CPU and MPR hardware, ROM, and software (flash) version
of the card. For non MPRs, the ROM and software versions
are 0.0
octet
1-2 H/W version (backplane register)
3-4 ROM version (MPRs only)
5-6 S/W version (Flash version MPRs only)
The versions are in the format major.minor. The major H/W
version and the major S/W version are reflected in the
sysDesc string.ro OCTET STRING .1.3.6.1.4.1.74.2.14.6.17.1.3 |
rh1EnhCtrlCardTypeThe same 5 bytes defined in rh1EnhCtrlRackMap for this card.
Duplicated here to simplify management station screen
development, MIB browsing, and traps.ro OCTET STRING .1.3.6.1.4.1.74.2.14.6.17.1.4 |
rh1EnhCtrlCardIpAddrThe IP Address associated with the primary agent for the
card. Depending on the card chosen, a set may change the
address used, or may only change the stored address reported
by the rackmaster agent. For cards which use the rack
master as the primary agent, this address will be the same
as rh1EnhCtrlRackIpAddr, a set to either changes both. This
method of changing the rack IP address IS NOT RECOMMENDED,
since some managers will not associate the state trap of a
CardIP change with the resulting rackIP change.
This object is intended to allow one management application
with a view of the rackmaster to automatically launch other
applications for other cards with a different MIB and IP
addresss. It should only be used to track the addresses of
these types of cards.rw IpAddress .1.3.6.1.4.1.74.2.14.6.17.1.5 |
rh1EnhCtrlResetCardConfigThis action resets the card configuration data to be equal
to the factory default values stored the firmware. These
values are Port state, Authorized addresses, Authorized
types, Link Integrity, and Extended Distance. This action
also causes the card to reset.rw Enumeration .1.3.6.1.4.1.74.2.14.6.17.1.6 |
rh1EnhCtrlFlashCardStatusLEDWhen set to FLASH, the main functional status indicator, an
LED labelled Status will flash at a slow rate (about 30
times per minute). This object allows a management station
to mark an arbitrary card and is intended to facilitate
servicing operations (although the significance of the
flashing LED is at the discretion of the management station
operator). Flashing applies to all LED colors (red, amber,
and green) and does not stop the LED from changing color.
This object is reset to NOFLASH after an agent reset.rw Enumeration .1.3.6.1.4.1.74.2.14.6.17.1.7 |
rh1EnhCtrlPortTableA list of Enhanced control entries. SEQUENCE OF Rh1EnhCtrlPortEntry .1.3.6.1.4.1.74.2.14.6.18 |
rh1EnhCtrlPortEntryEntry into the enhanced control port table Rh1EnhCtrlPortEntry .1.3.6.1.4.1.74.2.14.6.18.1 |
rh1EnhPortCtrlCardIDAn index into the enhanced control port table.ro INTEGER .1.3.6.1.4.1.74.2.14.6.18.1.1 |
rh1EnhCtrlPortIDAn index into the enhanced control port table.ro INTEGER .1.3.6.1.4.1.74.2.14.6.18.1.2 |
rh1EnhCtrlLinkIntegrityCtrlLink integrity checking is enabled/disabled on a per port
basis.rw Enumeration .1.3.6.1.4.1.74.2.14.6.18.1.3 |
rh1EnhCtrlLinkIntegrityAlarmingCtrlEnables/disables alarming (i.e., trap(alarm)) on a port
basis for the link integrity alarming feature.
The reason to add control at the hub for suppressing this
alarm condition has to do with the frequency with which
these alarms could occur. We want to be able to minimize
the number of alarms sent over the internet. LI alarming is
one candidate for 'minimizing'.rw Enumeration .1.3.6.1.4.1.74.2.14.6.18.1.4 |
rh1SecurityCapability OBJECT IDENTIFIER .1.3.6.1.4.1.74.2.14.7 |
rh1EnhCtrlLinkIntegrityStateIndicates whether the link is good or not. If the port or
link integrity is disabled, the value is 'not applicable'.
A Trap(alarm) is generated whenever the state transitions
from connected
::= { rh1EnhCtrlPortEntry 5 }
rh1EnhCtrlExtendedDistanceCtrl OBJECT-TYPE
SYNTAX INTEGER {
other (1),
disabled (2),
enabled (3)
}
ACCESS read-write
STATUS mandatory
DESCRIPTIONro Enumeration .rh1SecPortEntry.5 |