EZ5 MIB Catalog

CISCO-LWAPP-MESH-LINKTEST-MIB

2010-09-30

This MIB is intended to be implemented on all those devices operating as Central Controllers (CC) that terminate the Light Weight Access Point Protocol (LWAPP) tunnel from Light-weight Access Points. Link Test is performed to learn the backhaul link quality between two neighboring mesh nodes. The deployment of the controller (referred to as CC in the diagram), mesh nodes (RAP and MAP) LWAPP APs, client(MS) and NMS appear as follows. +.......+ +.......+ + + + + + NMS + + NMS + + + + + +.......+ +.......+ . . . . . . . . . . . . . . +......+ +......+ +......+ +......+ + + + + + + + + + CC + + CC + + CC + + CC + + + + + + + + + +......+ +......+ +......+ +......+ .. . . . .. . . . . . . . . . . . . . . . . . . . . . . . +......+ +......+ +......+ +......+ +......+ + + + + + + + + + + + RAP + + RAP + + RAP + + RAP + + RAP + + + + + + + + + + + +......+ +......+ +......+ +......+ +......+ . . . . . . . . . . . . . . . . . . . . . . . . . +......+ +......+ +......+ +......+ +......+ + + + + + + + + + + + MAP + + MS + + MAP + + MAP + + MAP + + + + + + + + + + + +......+ +......+ +......+ +......+ +......+ . . .. . . . . .. . . . . .. . . . . . . +......+ +......+ +......+ +......+. +......+ + + + + + + + + + + + MAP + + MAP + + MAP + + MAP + + MS + + + + + + + + + + + +......+ +......+ +......+ +......+ +......+ The LWAPP tunnel exists between the controller and the APs. The MNs communicate with the APs through the protocol defined by the 802.11 standard. LWAPP APs, upon bootup, discover and join one of the controllers and the controller pushes the configuration, that includes the WLAN parameters to the LWAPP APs. The APs encapsulate all the 802.11 frames from wireless clients inside LWAPP frames and forward the LWAPP frames to the controller. GLOSSARY Access Point ( AP ) An entity that contains an 802.11 medium access control ( MAC ) and physical layer ( PHY ) interface and provides access to the distribution services via the wireless medium for associated clients. LWAPP APs encapsulate all the 802.11 frames in LWAPP frames and sends them to the controller to which it is logically connected. Central Controller ( CC ) The central entity that terminates the LWAPP protocol tunnel from the LWAPP APs. Throughout this MIB, this entity is also referred to as 'controller'. Mobile Station ( MS ) A roaming 802.11 wireless device in a wireless network associated with an access point. Mobile Station and client are used interchangeably. Network Management System ( NMS ) The station from which the administrator manages the wired and wireless networks. Mesh Node A mesh node is defined as a physical or logical entity in the mesh network participating in forming the mesh backhaul. There are two types of mesh nodes supported in Cisco mesh network:RAP and MAP. Root AP (RAP) The AP forming the bridge between a wired and a mesh network with an Ethernet interface to the wired network and a 802.11 radio interface to the mesh network Mesh AP (MAP). The AP extending wireless coverage similar to a repeater in a mesh network and consists of a 802.11 uplink and a 802.11 downlink. On a single-radio backhaul, both uplink and downlink exist on the same radio and are logical links only. On a multi-radio backhaul, they may exist on different radios. Mesh Network Network starting with the wireless backhaul downlink of the RAP and all the entities below except any attached network to the Ethernet link of MAPs. A mesh network below a single RAP is also referred to as a 'Mesh Sector'.A mesh network consists of mesh nodes. A single mesh network is always augmented to a single wired network. Mesh Link A logical 802.11 link between two mesh nodes. A single link is point-to-point. All point-to-multipoint links are considered as multiple mesh links. Often referred to as mesh backhaul link. Mesh Backhaul A Mesh backhaul consists of mesh nodes and mesh links terminating at a RAP. This necessarily creates a one- to-one relationship between a 'mesh network', 'mesh sector' and a 'mesh backhaul' where these terms can be used interchangeably. SNR Signal to Noise ratio on the 802.11 radio. RSSI Received Signal Strength Indication (RSSI), the IEEE 802.11 standard defines a mechanism by which RF energy is to be measured by the circuitry on a wireless NIC. Its value is measured in dBm and ranges from -128 to 0. Bridged network The bridged network is defined as the network(s) attached to the Ethernet port of any MAP. There can be multiple such networks attached to a single mesh network. Mesh Node Roaming A mesh node may change its parent mesh node naturally when the RF/network condition changes.Child Mesh node will re-associate and re-authenticate to new parent mesh node. Mesh Security supports two types of mesh node roaming: Intra-controller roaming: LWAPP session remains and no LWAPP session roam is necessary Inter-controller roaming: LWAPP session is lost and LWAPP session roam may be necessary REFERENCE [1] Wireless LAN Medium Access Control ( MAC ) and Physical Layer ( PHY ) Specifications. [2] Draft-obara-capwap-lwapp-00.txt, IETF Light Weight Access Point Protocol

Download CISCO-LWAPP-MESH-LINKTEST-MIB.txt Open CISCO-LWAPP-MESH-LINKTEST-MIB.txt in a new tab

SCALARS (1) · TABLES (2)

Scalars (1)

NameOID
clMeshLtPurgeTime1.3.6.1.4.1.9.9.606.1.1.1

Tables (2)

NameOID
clMeshLtTable1.3.6.1.4.1.9.9.606.1.2.1
clMeshLtResultsTable1.3.6.1.4.1.9.9.606.1.3.1

END OF TOC

Scalar details

clMeshLtPurgeTime

1.3.6.1.4.1.9.9.606.1.1.1

Unsigned32 (15..1800) · seconds

This object indicates the duration for which the results of a particular run of linktest is available in clMeshLtResultsTable from the time of completion of that run of linktest. At the expiry of this time, after the completion of the linktest, the entries corresponding to the linktest and the corresponding results are removed from clMeshLtTable and clMeshLtResultsTable respectively.

Table details

clMeshLtTable

1.3.6.1.4.1.9.9.606.1.2.1

Index: clMeshLtIndex

This table is used to initiate linktests between two neighbor mesh node AP. With LinkTest support, the controller can test the backhaul link. User initiates one run of linktest by adding a row to this table through explicit management action from the network manager. A row is created by specifying clMeshLtIndex, clMeshLtSrcMacAddress and clMeshLtDestMacAddress setting the RowStatus object to 'createAndGo'. This indicates the the request made to start the linktest between two mesh nodes. The added row is deleted by setting the corresponding instance of the RowStatus object to 'destroy'. In case if the agent finds that the time duration represented by clMeshLtPurgeTime has elapsed since the completion of the linktest, it proceeds to delete the row automatically, if the row exists at that point of time. The results of the linktest identified by clMeshLtIndex can be obtained from the queries to clMeshLtResultsTable.

clMeshLtIndex

1.3.6.1.4.1.9.9.606.1.2.1.1.1

Unsigned32 (1..16)

This object uniquely identifies one particular run of the linktest initiated between the two mesh node neighbors identified by clMeshLtSrcMacAddress and clMeshLtDestMacAddress.

clMeshLtSrcMacAddress

1.3.6.1.4.1.9.9.606.1.2.1.1.2

MacAddressRepresents an 802 MAC address represented in the `canonical' order defined by IEEE 802.1a, i.e., as if it were transmitted least significant bit first, even though 802.5 (in contrast to other 802.x protocols) requires MAC addresses to be transmitted most significant bit first. SIZE (6) · OCTET STRING · hint 1x:

This object represents the source mac address of AP which initiates the link test to 'clMeshLtDestMacAddress' involved in the particular run of linktest. This object must be set to a valid value when setting clMeshLtRowStatus to 'createAndGo' to initiate a run of linktest.

clMeshLtDestMacAddress

1.3.6.1.4.1.9.9.606.1.2.1.1.3

MacAddressRepresents an 802 MAC address represented in the `canonical' order defined by IEEE 802.1a, i.e., as if it were transmitted least significant bit first, even though 802.5 (in contrast to other 802.x protocols) requires MAC addresses to be transmitted most significant bit first. SIZE (6) · OCTET STRING · hint 1x:

This object represents the destination mac address of AP involved in the particular run of linktest. This object must be set to a valid value when setting clMeshLtRowStatus to 'createAndGo' to initiate a run of linktest.

clMeshLtDataRate

1.3.6.1.4.1.9.9.606.1.2.1.1.4

Unsigned32 · Mbps

This object represents the data rate on backhaul link at which link test will be performed. Depending on the backhaul radio type, data rate will vary. if the backhaul radio is 802.11a, data rates can be one of the following possible values. Rates - 6,9,11,12,18,24,36,48,54,108 Mbps. If backhaul link is 802.11b then data rate can be 1,2,5.5,6,9,11 If backhaul link is 802.11g 1,2,5.5,6,9,11,12,18,24,36,48,54,108. This object must be set to a valid value when setting clMeshLtRowStatus to 'createAndGo' to initiate a run of linktest. This object is deprecated and superceded by clMeshLtDataRateValue object.

clMeshLtPktsPerSec

1.3.6.1.4.1.9.9.606.1.2.1.1.5

Unsigned32 (1..3000) · packets

This object represents the number of packets to be sent per sec during link test.

clMeshLtPktSize

1.3.6.1.4.1.9.9.606.1.2.1.1.6

Unsigned32 (1..1500) · bytes

This object represents the size of packets to be sent during link test.

clMeshLtDuration

1.3.6.1.4.1.9.9.606.1.2.1.1.7

Unsigned32 (15..60) · seconds

This object represents the duration, in seconds, of link test to be performed.

clMeshLtRowStatus

1.3.6.1.4.1.9.9.606.1.2.1.1.8

RowStatus1 = active2 = notInService3 = notReady4 = createAndGo5 = createAndWait6 = destroyThe RowStatus textual convention is used to manage the creation and deletion of conceptual rows, and is used as the value of the SYNTAX clause for the status column of a conceptual row (as described in Section 7.7.1 of [2].) The status column has six defined values: - `active', which indicates that the conceptual row is available for use by the managed device; - `notInService', which indicates that the conceptual row exists in the agent, but is unavailable for use by the managed device (see NOTE below); 'notInService' has no implication regarding the internal consistency of the row, availability of resources, or consistency with the current state of the managed device; - `notReady', which indicates that the conceptual row exists in the agent, but is missing information necessary in order to be available for use by the managed device (i.e., one or more required columns in the conceptual row have not been instanciated); - `createAndGo', which is supplied by a management station wishing to create a new instance of a conceptual row and to have its status automatically set to active, making it available for use by the managed device; - `createAndWait', which is supplied by a management station wishing to create a new instance of a conceptual row (but not make it available for use by the managed device); and, - `destroy', which is supplied by a management station wishing to delete all of the instances associated with an existing conceptual row. Whereas five of the six values (all except `notReady') may be specified in a management protocol set operation, only three values will be returned in response to a management protocol retrieval operation: `notReady', `notInService' or `active'. That is, when queried, an existing conceptual row has only three states: it is either available for use by the managed device (the status column has value `active'); it is not available for use by the managed device, though the agent has sufficient information to attempt to make it so (the status column has value `notInService'); or, it is not available for use by the managed device, and an attempt to make it so would fail because the agent has insufficient information (the state column has value `notReady'). NOTE WELL This textual convention may be used for a MIB table, irrespective of whether the values of that table's conceptual rows are able to be modified while it is active, or whether its conceptual rows must be taken out of service in order to be modified. That is, it is the responsibility of the DESCRIPTION clause of the status column to specify whether the status column must not be `active' in order for the value of some other column of the same conceptual row to be modified. If such a specification is made, affected columns may be changed by an SNMP set PDU if the RowStatus would not be equal to `active' either immediately before or after processing the PDU. In other words, if the PDU also contained a varbind that would change the RowStatus value, the column in question may be changed if the RowStatus was not equal to `active' as the PDU was received, or if the varbind sets the status to a value other than 'active'. Also note that whenever any elements of a row exist, the RowStatus column must also exist. To summarize the effect of having a conceptual row with a status column having a SYNTAX clause value of RowStatus, consider the following state diagram: STATE +--------------+-----------+-------------+------------- | A | B | C | D | |status col.|status column| |status column | is | is |status column ACTION |does not exist| notReady | notInService| is active --------------+--------------+-----------+-------------+------------- set status |noError ->D|inconsist- |inconsistent-|inconsistent- column to | or | entValue| Value| Value createAndGo |inconsistent- | | | | Value| | | --------------+--------------+-----------+-------------+------------- set status |noError see 1|inconsist- |inconsistent-|inconsistent- column to | or | entValue| Value| Value createAndWait |wrongValue | | | --------------+--------------+-----------+-------------+------------- set status |inconsistent- |inconsist- |noError |noError column to | Value| entValue| | active | | | | | | or | | | | | | | |see 2 ->D|see 8 ->D| ->D --------------+--------------+-----------+-------------+------------- set status |inconsistent- |inconsist- |noError |noError ->C column to | Value| entValue| | notInService | | | | | | or | | or | | | | | |see 3 ->C| ->C|see 6 --------------+--------------+-----------+-------------+------------- set status |noError |noError |noError |noError ->A column to | | | | or destroy | ->A| ->A| ->A|see 7 --------------+--------------+-----------+-------------+------------- set any other |see 4 |noError |noError |see 5 column to some| | | | value | | see 1| ->C| ->D --------------+--------------+-----------+-------------+------------- (1) goto B or C, depending on information available to the agent. (2) if other variable bindings included in the same PDU, provide values for all columns which are missing but required, and all columns have acceptable values, then return noError and goto D. (3) if other variable bindings included in the same PDU, provide legal values for all columns which are missing but required, then return noError and goto C. (4) at the discretion of the agent, the return value may be either: inconsistentName: because the agent does not choose to create such an instance when the corresponding RowStatus instance does not exist, or inconsistentValue: if the supplied value is inconsistent with the state of some other MIB object's value, or noError: because the agent chooses to create the instance. If noError is returned, then the instance of the status column must also be created, and the new state is B or C, depending on the information available to the agent. If inconsistentName or inconsistentValue is returned, the row remains in state A. (5) depending on the MIB definition for the column/table, either noError or inconsistentValue may be returned. (6) the return value can indicate one of the following errors: wrongValue: because the agent does not support notInService (e.g., an agent which does not support createAndWait), or inconsistentValue: because the agent is unable to take the row out of service at this time, perhaps because it is in use and cannot be de-activated. (7) the return value can indicate the following error: inconsistentValue: because the agent is unable to remove the row at this time, perhaps because it is in use and cannot be de-activated. (8) the transition to D can fail, e.g., if the values of the conceptual row are inconsistent, then the error code would be inconsistentValue. NOTE: Other processing of (this and other varbinds of) the set request may result in a response other than noError being returned, e.g., wrongValue, noCreation, etc. Conceptual Row Creation There are four potential interactions when creating a conceptual row: selecting an instance-identifier which is not in use; creating the conceptual row; initializing any objects for which the agent does not supply a default; and, making the conceptual row available for use by the managed device. Interaction 1: Selecting an Instance-Identifier The algorithm used to select an instance-identifier varies for each conceptual row. In some cases, the instance- identifier is semantically significant, e.g., the destination address of a route, and a management station selects the instance-identifier according to the semantics. In other cases, the instance-identifier is used solely to distinguish conceptual rows, and a management station without specific knowledge of the conceptual row might examine the instances present in order to determine an unused instance-identifier. (This approach may be used, but it is often highly sub-optimal; however, it is also a questionable practice for a naive management station to attempt conceptual row creation.) Alternately, the MIB module which defines the conceptual row might provide one or more objects which provide assistance in determining an unused instance-identifier. For example, if the conceptual row is indexed by an integer-value, then an object having an integer-valued SYNTAX clause might be defined for such a purpose, allowing a management station to issue a management protocol retrieval operation. In order to avoid unnecessary collisions between competing management stations, `adjacent' retrievals of this object should be different. Finally, the management station could select a pseudo-random number to use as the index. In the event that this index was already in use and an inconsistentValue was returned in response to the management protocol set operation, the management station should simply select a new pseudo-random number and retry the operation. A MIB designer should choose between the two latter algorithms based on the size of the table (and therefore the efficiency of each algorithm). For tables in which a large number of entries are expected, it is recommended that a MIB object be defined that returns an acceptable index for creation. For tables with small numbers of entries, it is recommended that the latter pseudo-random index mechanism be used. Interaction 2: Creating the Conceptual Row Once an unused instance-identifier has been selected, the management station determines if it wishes to create and activate the conceptual row in one transaction or in a negotiated set of interactions. Interaction 2a: Creating and Activating the Conceptual Row The management station must first determine the column requirements, i.e., it must determine those columns for which it must or must not provide values. Depending on the complexity of the table and the management station's knowledge of the agent's capabilities, this determination can be made locally by the management station. Alternately, the management station issues a management protocol get operation to examine all columns in the conceptual row that it wishes to create. In response, for each column, there are three possible outcomes: - a value is returned, indicating that some other management station has already created this conceptual row. We return to interaction 1. - the exception `noSuchInstance' is returned, indicating that the agent implements the object-type associated with this column, and that this column in at least one conceptual row would be accessible in the MIB view used by the retrieval were it to exist. For those columns to which the agent provides read-create access, the `noSuchInstance' exception tells the management station that it should supply a value for this column when the conceptual row is to be created. - the exception `noSuchObject' is returned, indicating that the agent does not implement the object-type associated with this column or that there is no conceptual row for which this column would be accessible in the MIB view used by the retrieval. As such, the management station can not issue any management protocol set operations to create an instance of this column. Once the column requirements have been determined, a management protocol set operation is accordingly issued. This operation also sets the new instance of the status column to `createAndGo'. When the agent processes the set operation, it verifies that it has sufficient information to make the conceptual row available for use by the managed device. The information available to the agent is provided by two sources: the management protocol set operation which creates the conceptual row, and, implementation-specific defaults supplied by the agent (note that an agent must provide implementation-specific defaults for at least those objects which it implements as read-only). If there is sufficient information available, then the conceptual row is created, a `noError' response is returned, the status column is set to `active', and no further interactions are necessary (i.e., interactions 3 and 4 are skipped). If there is insufficient information, then the conceptual row is not created, and the set operation fails with an error of `inconsistentValue'. On this error, the management station can issue a management protocol retrieval operation to determine if this was because it failed to specify a value for a required column, or, because the selected instance of the status column already existed. In the latter case, we return to interaction 1. In the former case, the management station can re-issue the set operation with the additional information, or begin interaction 2 again using `createAndWait' in order to negotiate creation of the conceptual row. NOTE WELL Regardless of the method used to determine the column requirements, it is possible that the management station might deem a column necessary when, in fact, the agent will not allow that particular columnar instance to be created or written. In this case, the management protocol set operation will fail with an error such as `noCreation' or `notWritable'. In this case, the management station decides whether it needs to be able to set a value for that particular columnar instance. If not, the management station re-issues the management protocol set operation, but without setting a value for that particular columnar instance; otherwise, the management station aborts the row creation algorithm. Interaction 2b: Negotiating the Creation of the Conceptual Row The management station issues a management protocol set operation which sets the desired instance of the status column to `createAndWait'. If the agent is unwilling to process a request of this sort, the set operation fails with an error of `wrongValue'. (As a consequence, such an agent must be prepared to accept a single management protocol set operation, i.e., interaction 2a above, containing all of the columns indicated by its column requirements.) Otherwise, the conceptual row is created, a `noError' response is returned, and the status column is immediately set to either `notInService' or `notReady', depending on whether it has sufficient information to (attempt to) make the conceptual row available for use by the managed device. If there is sufficient information available, then the status column is set to `notInService'; otherwise, if there is insufficient information, then the status column is set to `notReady'. Regardless, we proceed to interaction 3. Interaction 3: Initializing non-defaulted Objects The management station must now determine the column requirements. It issues a management protocol get operation to examine all columns in the created conceptual row. In the response, for each column, there are three possible outcomes: - a value is returned, indicating that the agent implements the object-type associated with this column and had sufficient information to provide a value. For those columns to which the agent provides read-create access (and for which the agent allows their values to be changed after their creation), a value return tells the management station that it may issue additional management protocol set operations, if it desires, in order to change the value associated with this column. - the exception `noSuchInstance' is returned, indicating that the agent implements the object-type associated with this column, and that this column in at least one conceptual row would be accessible in the MIB view used by the retrieval were it to exist. However, the agent does not have sufficient information to provide a value, and until a value is provided, the conceptual row may not be made available for use by the managed device. For those columns to which the agent provides read-create access, the `noSuchInstance' exception tells the management station that it must issue additional management protocol set operations, in order to provide a value associated with this column. - the exception `noSuchObject' is returned, indicating that the agent does not implement the object-type associated with this column or that there is no conceptual row for which this column would be accessible in the MIB view used by the retrieval. As such, the management station can not issue any management protocol set operations to create an instance of this column. If the value associated with the status column is `notReady', then the management station must first deal with all `noSuchInstance' columns, if any. Having done so, the value of the status column becomes `notInService', and we proceed to interaction 4. Interaction 4: Making the Conceptual Row Available Once the management station is satisfied with the values associated with the columns of the conceptual row, it issues a management protocol set operation to set the status column to `active'. If the agent has sufficient information to make the conceptual row available for use by the managed device, the management protocol set operation succeeds (a `noError' response is returned). Otherwise, the management protocol set operation fails with an error of `inconsistentValue'. NOTE WELL A conceptual row having a status column with value `notInService' or `notReady' is unavailable to the managed device. As such, it is possible for the managed device to create its own instances during the time between the management protocol set operation which sets the status column to `createAndWait' and the management protocol set operation which sets the status column to `active'. In this case, when the management protocol set operation is issued to set the status column to `active', the values held in the agent supersede those used by the managed device. If the management station is prevented from setting the status column to `active' (e.g., due to management station or network failure) the conceptual row will be left in the `notInService' or `notReady' state, consuming resources indefinitely. The agent must detect conceptual rows that have been in either state for an abnormally long period of time and remove them. It is the responsibility of the DESCRIPTION clause of the status column to indicate what an abnormally long period of time would be. This period of time should be long enough to allow for human response time (including `think time') between the creation of the conceptual row and the setting of the status to `active'. In the absence of such information in the DESCRIPTION clause, it is suggested that this period be approximately 5 minutes in length. This removal action applies not only to newly-created rows, but also to previously active rows which are set to, and left in, the notInService state for a prolonged period exceeding that which is considered normal for such a conceptual row. Conceptual Row Suspension When a conceptual row is `active', the management station may issue a management protocol set operation which sets the instance of the status column to `notInService'. If the agent is unwilling to do so, the set operation fails with an error of `wrongValue' or `inconsistentValue'. Otherwise, the conceptual row is taken out of service, and a `noError' response is returned. It is the responsibility of the DESCRIPTION clause of the status column to indicate under what circumstances the status column should be taken out of service (e.g., in order for the value of some other column of the same conceptual row to be modified). Conceptual Row Deletion For deletion of conceptual rows, a management protocol set operation is issued which sets the instance of the status column to `destroy'. This request may be made regardless of the current value of the status column (e.g., it is possible to delete conceptual rows which are either `notReady', `notInService' or `active'.) If the operation succeeds, then all instances associated with the conceptual row are immediately removed. · Integer32

This object is the status column used for creating and deleting instances of the columnar objects in this table.

clMeshLtDataRateValue

1.3.6.1.4.1.9.9.606.1.2.1.1.9

INTEGER1 = mbps12 = mbps23 = mbps5point54 = mbps65 = mbps96 = mbps117 = mbps128 = mbps189 = mbps2410 = mbps3611 = mbps4812 = mbps5413 = mbps10814 = htMcs015 = htMcs116 = htMcs217 = htMcs318 = htMcs419 = htMcs520 = htMcs621 = htMcs722 = htMcs823 = htMcs924 = htMcs1025 = htMcs1126 = htMcs1227 = htMcs1328 = htMcs1429 = htMcs15 · Integer32

This object represents the data rate on backhaul link at which link test will be performed. Depending on the backhaul radio type, data rate will vary. If the value of clMeshNodeBackhaul object is 'dot11a', data rates can be one of the following possible values. mbps6(4) mbps9(5) mbps12(7) mbps18(8) mbps24(9) mbps36(10) mbps48(11) mbps54(12) mbps108(13) Additionally following data rates are supported if 802.11a supports 11n. htMcs0(14) htMcs1(15) htMcs2(16) htMcs3(17) htMcs4(18) htMcs5(19) htMcs6(20) htMcs7(21) htMcs8(22) htMcs9(23) htMcs10(24) htMcs11(25) htMcs12(26) htMcs13(27) htMcs14(28) htMcs15(29) If the value of clMeshNodeBackhaul object is 'dot11b', then data rate can be one of the following possible values. mbps1(1) mbps2(2) mbps5point5(3) mbps6(4) mbps9(5) mbps11(6) If the value of clMeshNodeBackhaul object is 'dot11g', then data rate can be one of the following possible values. mbps1(1) mbps2(2) mbps5point5(3) mbps6(4) mbps9(5) mbps11(6) mbps12(7) mbps18(8) mbps24(9) mbps36(10) mbps48(11) mbps54(12) mbps108(13) This object cannot be modified when the value of clMeshLtRowStatus object in the same row is 'active'.

clMeshLtResultsTable

1.3.6.1.4.1.9.9.606.1.3.1

Index: clMeshLtIndex

This table populates the results of the mesh linktests initiated by the user through the clMeshLtTable. This table has a sparse dependent relationship with clMeshLtEntry. There exists a row in this table corresponding to each row in clMeshLtEntry identified by clMeshLtIndex. A row is added to this table when user, through the network manager, adds a row to clMeshLtEntry and initiates one run of linktest. A row can be deleted by the agent when the corresponding row of clMeshLtEntry is deleted or it will get deleted when the clMeshLtPurgeTime expires. The manager is expected to poll clMeshLtStatus to check the status of the linktest.

clMeshLtTxPkts

1.3.6.1.4.1.9.9.606.1.3.1.1.1

Counter32 · packets

The total number of packets sent to the destination mesh node specified by clMeshLtDestMacAddress from AP specified by clMeshLtSrcMacAddress.

clMeshLtRxPkts

1.3.6.1.4.1.9.9.606.1.3.1.1.2

Counter32 · packets

The total number of packets received by mesh node specified by clMeshLtDestMacAddress from mesh node specified by clMeshLtSrcMacAddress.

clMeshLtRxGoodPkts

1.3.6.1.4.1.9.9.606.1.3.1.1.3

Counter32 · packets

The total number of packets received without any errors by mesh node specified by clMeshLtDestMacAddress from mesh node AP specified by clMeshLtSrcMacAddress .

clMeshLtRxDupPkts

1.3.6.1.4.1.9.9.606.1.3.1.1.4

Counter32 · packets

The total number of packets received with same sequence number by mesh node specified by clMeshLtDestMacAddress from mesh node specified by clMeshLtSrcMacAddress.

clMeshLtRxShortPkts

1.3.6.1.4.1.9.9.606.1.3.1.1.5

Counter32 · packets

The total number of packets received that were shorter than the 802.11 frame size by mesh node specified by clMeshLtDestMacAddress from mesh node specified by clMeshLtSrcMacAddress.

clMeshLtRxBigPkts

1.3.6.1.4.1.9.9.606.1.3.1.1.6

Counter32 · packets

The total number of packets received that were larger than the 802.11 frame size by mesh node specified by clMeshLtDestMacAddress from mesh node specified by clMeshLtSrcMacAddress.

clMeshLtRxPhyErrPkts

1.3.6.1.4.1.9.9.606.1.3.1.1.7

Counter32 · packets

The total number of packets with error detected at physical layer received by mesh node specified by clMeshLtDestMacAddress from mesh node specified by clMeshLtSrcMacAddress.

clMeshLtRxCRCErrPkts

1.3.6.1.4.1.9.9.606.1.3.1.1.8

Counter32 · packets

The total number of packets with CRC error received by mesh node specified by clMeshLtDestMacAddress from mesh node specified by clMeshLtSrcMacAddress.

clMeshLtRxSeqErrPkts

1.3.6.1.4.1.9.9.606.1.3.1.1.9

Counter32 · packets

The total number of packets that were received with sequence number out of order by mesh node specified by clMeshLtDestMacAddress from mesh node specified by clMeshLtSrcMacAddress.

clMeshLtRxAvgSNR

1.3.6.1.4.1.9.9.606.1.3.1.1.10

Integer32 · dB

The average SNR value observed at the mesh node specified by clMeshLtDestMacAddress.

clMeshLtRxHighestSNR

1.3.6.1.4.1.9.9.606.1.3.1.1.11

Integer32 · dB

The highest SNR value observed at the mesh node specified by clMeshLtDestMacAddress.

clMeshLtRxLowestSNR

1.3.6.1.4.1.9.9.606.1.3.1.1.12

Integer32 · dB

The lowest SNR value observed at the mesh node specified by clMeshLtDestMacAddress.

clMeshLtRxAvgNoiseFloor

1.3.6.1.4.1.9.9.606.1.3.1.1.13

Integer32 · dB

The average noise floor value observed at the mesh node specified by clMeshLtDestMacAddress. The noise floor is the measure of the signal created from the sum of all the noise sources and unwanted signals within a measurement system.

clMeshLtRxHighestNoiseFloor

1.3.6.1.4.1.9.9.606.1.3.1.1.14

Integer32 · dB

The highest Noise Floor value observed at the mesh node specified by clMeshLtDestMacAddress. The noise floor is the measure of the signal created from the sum of all the noise sources and unwanted signals within a measurement system.

clMeshLtRxLowestNoiseFloor

1.3.6.1.4.1.9.9.606.1.3.1.1.15

Integer32 · dB

The lowest Noise Floor value observed at the mesh node specified by clMeshLtDestMacAddress. The noise floor is the measure of the signal created from the sum of all the noise sources and unwanted signals within a measurement system.

clMeshLtRxAvgRSSI

1.3.6.1.4.1.9.9.606.1.3.1.1.16

Integer32 · dBm

The average RSSI value observed at the mesh node specified by clMeshLtDestMacAddress.

clMeshLtRxHighestRSSI

1.3.6.1.4.1.9.9.606.1.3.1.1.17

Integer32 · dBm

The highest RSSI value observed at the mesh node specified by clMeshLtDestMacAddress.

clMeshLtRxLowestRSSI

1.3.6.1.4.1.9.9.606.1.3.1.1.18

Integer32 · dBm

The lowest RSSI value as observed at the mesh node specified by clMeshLtDestMacAddress.

clMeshLtStatus

1.3.6.1.4.1.9.9.606.1.3.1.1.19

INTEGER1 = clMeshLtStatusFailed2 = clMeshLtStatusInProgress3 = clMeshLtStatusSuccess · Integer32

This object indicates the status of the linktest this particular entry corresponds to. The semantics as follows. 'clMeshLtStatusFailed' - This value indicates that this particular linktest has failed. 'clMeshLtStatusInProgress' - This value indicates that the linktest is in progress. 'clMeshLtStatusSuccess' - This value indicates that linktest has succeeded.

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