JPH11234366A - Line supervisory system - Google Patents

Line supervisory system

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Publication number
JPH11234366A
JPH11234366A JP10037841A JP3784198A JPH11234366A JP H11234366 A JPH11234366 A JP H11234366A JP 10037841 A JP10037841 A JP 10037841A JP 3784198 A JP3784198 A JP 3784198A JP H11234366 A JPH11234366 A JP H11234366A
Authority
JP
Japan
Prior art keywords
line
switching control
switching
confounding
section
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
JP10037841A
Other languages
Japanese (ja)
Other versions
JP3484667B2 (en
Inventor
Keiichi Okuyama
慶一 奥山
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
NEC Engineering Ltd
Original Assignee
NEC Engineering Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by NEC Engineering Ltd filed Critical NEC Engineering Ltd
Priority to JP03784198A priority Critical patent/JP3484667B2/en
Publication of JPH11234366A publication Critical patent/JPH11234366A/en
Application granted granted Critical
Publication of JP3484667B2 publication Critical patent/JP3484667B2/en
Anticipated expiration legal-status Critical
Expired - Fee Related legal-status Critical Current

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  • Detection And Prevention Of Errors In Transmission (AREA)
  • Maintenance And Management Of Digital Transmission (AREA)

Abstract

PROBLEM TO BE SOLVED: To provide a line supervisory system which automatically specifies a failure place of a line. SOLUTION: An input signal is divided into two by a branching part 1 and outputted to interfacing parts 2 and 3. Interfacing parts 2 and 3, and 4 and 5 undergo confounding by selection circuits 101 and 102 and switching control bits are inserted into a zero system line and a one system line by switching control bit insertion detecting parts 301 and 302 and sent to interfacing parts 6 and 7. The parts 6 and 7 send the switching control bits to a switch controlling part 401. The part 401 performs switching to each selection circuit based on the received switching control bits. Interfacing parts 6 and 7, and 8 and 9 undergo confounding by selection circuits 103 and 104 and selected by the selection circuit 105 of a selecting part 10. A failure place deciding part 501 decides a failure place based on the supervisory results of a spare system in the part 10 and information from the part 401 in a section B.

Description

【発明の詳細な説明】DETAILED DESCRIPTION OF THE INVENTION

【0001】[0001]

【発明の属する技術分野】本発明は、送信装置と受信装
置との間で複数の交絡を持つディジタル伝送技術に係
り、より詳しくは、送信装置からの信号を2分岐し、分
岐された信号を受信装置で選択する際に、各交絡区間の
切り分けを、予備系回線を使用して自動的に行う回線監
視システムに関する。
BACKGROUND OF THE INVENTION 1. Field of the Invention The present invention relates to a digital transmission technique having a plurality of confounds between a transmitting apparatus and a receiving apparatus, and more particularly, to splitting a signal from a transmitting apparatus into two and dividing the split signal. The present invention relates to a line monitoring system that automatically separates each confounding section by using a standby line when selecting a signal by a receiving device.

【0002】[0002]

【従来の技術】従来、冗長構成(常用系のほかに予備系
を含む構成、以下同じ)をもつ回線を複数箇所で採用し
ている場合に、常用系回線に障害が発生すると、冗長構
成切替え単位毎に、手動で予備系回線に切替え、動作確
認を行いながら障害箇所の特定を行っている。
2. Description of the Related Art Conventionally, when a line having a redundant configuration (a configuration including a standby system in addition to a normal system, the same applies hereinafter) is employed at a plurality of locations, when a failure occurs in a normal system line, the redundant configuration is switched. For each unit, it is manually switched to the standby line, and the fault location is specified while confirming the operation.

【0003】図8は、従来のこの種の回線切替方式の概
要を示す図である。図8において、入力された信号は、
分岐部1で2分岐されてインタフェース部2、3へ出力
される。インタフェース部2、3とインタフェース部
4、5は、それぞれ選択回路101、102により交絡
がとられ、切替制御ビット挿入検出部301、302よ
り切替制御ビットが挿入されて、インタフェース部6、
7へ送出される。
FIG. 8 is a diagram showing an outline of a conventional line switching system of this type. In FIG. 8, the input signal is
The signal is branched into two by the branch unit 1 and output to the interface units 2 and 3. The interface units 2 and 3 and the interface units 4 and 5 are confounded by the selection circuits 101 and 102, respectively, and the switching control bits are inserted by the switching control bit insertion detection units 301 and 302.
7 is sent.

【0004】インタフェース部6、7では、切替制御ビ
ット挿入検出部303、304にて切替制御ビットを受
信する。切替制御部401では、受信した切替制御ビッ
トをもとに、各選択回路101、102への切替と、対
向装置への切替制御ビットの挿入指示とを行う。インタ
フェース部6、7とインタフェース部8、9も、選択回
路103、104により交絡がとられ、選択部10の選
択回路105により選択される。
In the interface units 6 and 7, the switching control bit insertion detecting units 303 and 304 receive the switching control bits. The switching control unit 401 performs switching to each of the selection circuits 101 and 102 and instructs insertion of the switching control bit to the opposing device based on the received switching control bit. The interface units 6 and 7 and the interface units 8 and 9 are also interlaced by the selection circuits 103 and 104 and are selected by the selection circuit 105 of the selection unit 10.

【0005】インタフェース部4、5および6、7は、
対向局に対して、図9に示されるように、切替制御ビッ
トの定義説明図で定義される切替制御ビットを双方向に
伝送している。この切替制御ビットは、図8に示す区間
Bの切替制御のみに使用される。例えば、インタフェー
ス部6の入力断時には、受信側装置の選択回路103、
104を1系選択にするとともに、インタフェース部6
からインタフェース部4およびインタフェース部7から
インタフェース部5方向へ、切替制御ビット(Ka1,
Ka2,Ka3:1,0,0)を送る。
The interface units 4, 5 and 6, 7
As shown in FIG. 9, the switching control bits defined in the switching control bit definition explanatory diagram are bidirectionally transmitted to the opposite station. This switching control bit is used only for the switching control in the section B shown in FIG. For example, when the input of the interface unit 6 is cut off, the selection circuit 103 of the reception-side device,
104 is selected as one system, and the interface unit 6
From the interface unit 4 and from the interface unit 7 to the interface unit 5, the switching control bits (Ka1,
Ka2, Ka3: 1, 0, 0).

【0006】また、送信側装置に対して1系への切替指
示を出す。これを受けた送信側装置では、1系への切替
を行う。一方、受信側装置に対して、切替制御ビット
(Ka1,Ka2,Ka3:1,0,1)を送る。これ
を受けた受信側装置は、送信側装置に対して、切替制御
ビット(Ka1,Ka2,Ka3:1,0,1)を送信
し、1系切替としての一つの切替制御動作が完了する。
なお、区間A,Cに対しての冗長構成切替は、それぞれ
送信装置、受信装置で個別に切替制御を行っていた。
[0006] Further, an instruction to switch to the first system is issued to the transmitting device. In response to this, the transmitting apparatus switches to the first system. On the other hand, the switching control bits (Ka1, Ka2, Ka3: 1, 0, 1) are sent to the receiving device. The receiving-side device receiving this transmits the switching control bits (Ka1, Ka2, Ka3: 1, 0, 1) to the transmitting-side device, and one switching control operation as one-system switching is completed.
In addition, in the redundant configuration switching for the sections A and C, the switching control is individually performed by the transmitting device and the receiving device, respectively.

【0007】[0007]

【発明が解決しようとする課題】上述したように、1つ
の入力信号を2分岐し、各部で冗長構成切替を行うシス
テムでは、信号の正常であることの監視を冗長区間毎に
行うことが困難である。このため、最後に切替を行う箇
所でしか監視できないような場合に、常用系回線に障害
が発生すると、障害を素早く復旧させるためには、ひと
まず異常が発生している回線のすべてを予備系に切替え
る必要がある。これは、各部の冗長構成において障害箇
所を絞り込み、障害が発生した部位を特定して、交換、
修理等の保守を行うために必要であるからである。
As described above, in a system in which one input signal is branched into two and a redundant configuration is switched in each unit, it is difficult to monitor whether the signal is normal for each redundant section. It is. For this reason, if a fault occurs on the service line when monitoring can be performed only at the last switching point, all lines that have failed should be temporarily switched to the standby system in order to quickly recover from the fault. You need to switch. This means that in the redundant configuration of each part, the failure location is narrowed down, the failure location is specified, replacement,
This is because it is necessary for performing maintenance such as repair.

【0008】このため、ひとまず障害を復旧させた後
で、障害箇所を特定するためには、冗長区間毎に、何処
で障害が発生したのかを、手動で切替を行いながら、出
力される主信号を監視して判断しなければならないとい
う問題があった。
[0008] For this reason, after the fault has been recovered, in order to identify the fault location, the main signal output while manually switching where the fault occurred in each redundant section. Has to be monitored and judged.

【0009】本発明は、上記の事情に鑑みてなされたも
ので、冗長構成区間の切替と障害箇所の特定が容易な回
線監視システムを提供することを課題とする。
The present invention has been made in view of the above circumstances, and it is an object of the present invention to provide a line monitoring system capable of easily switching a redundant section and specifying a failure point.

【0010】[0010]

【課題を解決するための手段】上記課題を解決する本発
明の回線監視システムは、送信装置より送信された信号
を回線を通じて伝送する際に、回線をn(n=1,2,
3…)箇所でそれぞれ冗長回線に交絡し、受信装置で最
終的に特定の回線に切り替える回線監視システムにおい
て、最終交絡区間の監視結果に基づいて一方の回線に障
害が発生したことを検出する障害検出手段と、前記障害
検出手段が障害を検出したときに、すべての交絡区間を
他方の回線に同時に切り替えて障害を復旧させる手段
と、を設けたことを特徴とする。
According to a line monitoring system of the present invention for solving the above-mentioned problems, when transmitting a signal transmitted from a transmitting device through a line, the line is connected to n (n = 1, 2, 2).
3)) In a line monitoring system in which each of the lines is entangled with a redundant line and finally switched to a specific line by a receiving device, a failure that detects the occurrence of a failure in one of the lines based on the monitoring result of the last confounding section A detection unit, and a unit that, when the failure detection unit detects a failure, simultaneously switches all confounding sections to the other line to recover from the failure, is provided.

【0011】好ましい形態としては、障害が発生した回
線の障害箇所を特定する障害箇所特定手段をさらに備
え、伝送される信号の空きタイムスロットを利用して送
信側と受信側との間で双方向通信を行い、前記一方の回
線の最終交絡区間での監視結果に基づいて冗長構成毎に
回線切替を行うようにする。なお、前記障害箇所特定手
段は、個々の交絡区間を所定の切替制御指令によって切
り替え、その交絡区間の切替に際して前記回線の最終区
間での監視結果をもとに自動的に障害箇所を切り分ける
ように構成される。
In a preferred embodiment, the apparatus further comprises a fault location specifying means for specifying a fault location of the line in which the fault has occurred, and a bidirectional communication between the transmitting side and the receiving side using an empty time slot of a signal to be transmitted. Communication is performed, and line switching is performed for each redundant configuration based on the monitoring result of the one line in the final confounding section. The fault location specifying means switches the individual confounding sections according to a predetermined switching control command, and automatically switches the fault locations based on the monitoring result in the last section of the line when switching the confounding sections. Be composed.

【0012】[0012]

【発明の実施の形態】以下、本発明の実施の形態を図面
に基づいて説明する。図1は、本発明の実施の形態を示
すブロック構成図である。図1において、入力された信
号は、分岐部1で2分岐されてインタフェース部2、3
へ出力される。インタフェース部2、3とインタフェー
ス部4、5は、選択回路101、102により交絡がと
られる。この結果、切替制御ビット挿入検出部301、
302より、切替制御ビットが、0系回線(常用系)、
1系回線(予備系:図中の太線)に挿入されてインタフ
ェース部6、7へ送出される。インタフェース部6、7
では、切替制御ビット挿入検出部303、304を介し
て切替制御部401にて切替制御ビットが受信される。
Embodiments of the present invention will be described below with reference to the drawings. FIG. 1 is a block diagram showing an embodiment of the present invention. In FIG. 1, an input signal is branched into two by a branch unit 1 and interface units 2, 3
Output to The interface units 2 and 3 and the interface units 4 and 5 are confounded by the selection circuits 101 and 102. As a result, the switching control bit insertion detection unit 301,
From 302, the switching control bit is set to 0 system line (normal system),
It is inserted into the first system line (standby system: thick line in the figure) and sent to the interface units 6 and 7. Interface units 6, 7
Then, the switching control bit is received by the switching control unit 401 via the switching control bit insertion detecting units 303 and 304.

【0013】切替制御部401では、受信した切替制御
ビットをもとに、各選択回路103、104への切替と
対向装置への切替制御ビットの挿入指示とを行う。イン
タフェース部6、7とインタフェース部8、9は、選択
回路103、104により交絡がとられ、選択部10の
選択回路105により選択される。障害箇所判定部50
1では、選択部10における予備系の監視結果と、区間
Bの切替制御部401からの情報をもとに、障害箇所の
判定を行う。
The switching control unit 401 performs switching to each of the selection circuits 103 and 104 and instructs insertion of the switching control bit to the opposite device based on the received switching control bit. The interface units 6 and 7 and the interface units 8 and 9 are confounded by the selection circuits 103 and 104 and are selected by the selection circuit 105 of the selection unit 10. Fault location determination unit 50
In 1, a failure point is determined based on the result of monitoring the standby system in the selection unit 10 and information from the switching control unit 401 in the section B.

【0014】図1に示す構成において、インタフェース
部4−6間およびインタフェース部5−7間は、図2で
定義される切替制御ビットにより双方向通信が行われ
る。このとき、切替制御ビットは、伝送されるディジタ
ル信号の空きタイムスロットを利用して伝送される。
In the configuration shown in FIG. 1, bidirectional communication is performed between the interface units 4-6 and 5-7 by the switching control bits defined in FIG. At this time, the switching control bit is transmitted using an empty time slot of the transmitted digital signal.

【0015】例えば、図2において、予備系区間A選択
指示(1,1,1=正常モード)の場合は、切替制御ビ
ットKa1では、「1」ビットなので「0系非選択」で
ある。切替制御ビットKa2も「1」ビットなので「1
系非選択」」である。切替制御ビットKa3は「1」ビ
ットなので「切替なし」となる。また、予備系区間A−
B選択指示(1,1,1=正常モード)の場合における
切替制御ビットKb1,Kb2,Kb3は、図2に示す
ように、「0系非選択」、「1系非選択」、「切替な
し」となる。
For example, in FIG. 2, in the case of a standby section A selection instruction (1, 1, 1 = normal mode), the switching control bit Ka1 is "1" bit, so "0 system is not selected". Since the switching control bit Ka2 is also a “1” bit, “1”
System non-selection ". Since the switching control bit Ka3 is a "1" bit, it is "no switching". In addition, the standby system section A-
As shown in FIG. 2, the switching control bits Kb1, Kb2, and Kb3 in the case of the B selection instruction (1, 1, 1 = normal mode) are “0 system non-selection”, “1 system non-selection”, and “no switching”. ".

【0016】上記のように構成される回線監視システム
において、図2に示すような切替制御ビットが定義され
ている場合、図1の0系に障害が発生したとする。する
と、切替制御部401からの指示で、選択回路105に
より予備回線である1系へ切替が行われるため、0系回
線は非運用状態となる。
In the line monitoring system configured as described above, when a switching control bit as shown in FIG. 2 is defined, it is assumed that a failure has occurred in the system 0 in FIG. Then, in response to an instruction from the switching control unit 401, the selection circuit 105 switches to the 1-system, which is the protection line, so that the 0-system line is in the non-operation state.

【0017】この場合、切替制御ビットの通信状態を示
すと、図3のようになる。図3において、制御は、上か
ら下の方向に順次行われる。なお、図示左方向矢印→は
インタフェース部4、5からインタフェース部6、7の
方向へ、また、図示右方向矢印←はインタフェース部
6、7からインタフェース部4、5の方向への切替制御
ビットの伝送方向を示す。
In this case, the communication state of the switching control bit is as shown in FIG. In FIG. 3, the control is performed sequentially from the top to the bottom. It should be noted that the left arrow → in the figure indicates the switching control bit from the interface units 4 and 5 to the interface units 6 and 7, and the right arrow ← indicates the switching control bit in the direction from the interface units 6 and 7 to the interface units 4 and 5. Indicates the transmission direction.

【0018】上記システムにおいて障害が発生し、例え
ば、予備系(1系)回線に切替わった後、非運用系とな
った0系回線を使用して、障害箇所の切り分けを行う。
When a failure occurs in the above system, for example, after switching to the protection system (system 1) line, the fault location is isolated using the system 0 line which has become the protection system.

【0019】まず、非運用系となった0系回線におい
て、区間Aのみを1系に切替える。このときの切替え制
御ビットを図4に、区間Aのみを予備系(1系)に選択
した時の構成図を図5に示す。この結果、装置内監視点
201において、障害が復旧していれば、区間Aの0系
側が障害であると判定できる。障害が復旧していない場
合は、区間BまたはCが障害箇所であると判定できる。
First, only the section A is switched to the 1-system in the 0-system line that has become the protection system. FIG. 4 shows the switching control bits at this time, and FIG. 5 shows a configuration diagram when only the section A is selected as the standby system (system 1). As a result, if the fault has been recovered at the in-device monitoring point 201, it can be determined that the system 0 side of the section A is faulty. If the failure has not been recovered, it can be determined that the section B or C is a failure location.

【0020】次に、非運用の0系回線において、区間A
および区間Bを1系に選択したとする。このときの切替
制御ビットを図6に、また構成図を図7に示す。この結
果、装置内監視点201において、障害が復旧していれ
ば、区間Aまたは区間Bの0系側が障害であると判定で
きる。しかし、障害が復旧していない場合は区間Cが障
害箇所であると判定できる。以上のシーケンスの結果を
障害箇所判定部501により管理し、障害箇所の切り分
けを行う。
Next, in the non-operating system 0 line, section A
Suppose that the section B is selected as the first system. The switching control bits at this time are shown in FIG. 6, and the configuration diagram is shown in FIG. As a result, if the fault has been recovered at the monitoring point 201 in the device, it can be determined that the 0 system side of the section A or the section B is faulty. However, when the failure has not been recovered, it can be determined that the section C is a failure location. The result of the above sequence is managed by the fault location determination unit 501, and the fault location is identified.

【0021】このように、本実施形態の回線監視システ
ムによれば、現在の選択系に障害が発生したときに、す
べての冗長区間を予備系回線に切替えて障害の復旧を図
るとともに、多重化されている切替制御ビットの切替シ
ーケンスを用いて予備系回線に対する最終区間のみの監
視を行いながら常用系回線の各冗長区間の切替を順次行
い、自動的に常用系回線の障害箇所の特定を行うことが
できるようになる。
As described above, according to the line monitoring system of the present embodiment, when a failure occurs in the currently selected system, all the redundant sections are switched to the spare lines to recover from the failure and to perform multiplexing. Using the switching sequence of the switching control bits, the redundant section of the service line is sequentially switched while monitoring only the last section of the protection line, and the failure point of the service line is automatically specified. Will be able to do it.

【0022】なお、以上の説明は、冗長区間をA,B,
Cの3区間に分けた場合として説明しているが、一般的
にn(n=1,2,3,4,…)の場合にも、切替制御
ビットを(Ka1,Ka2,Ka3),(Kb1,Kb
2,Kb3),……,(Kn1,Kn2,Kn3)と拡
張することにより、n区間の冗長構成をとった場合にも
応用することができる。
In the above description, redundant sections are defined as A, B,
Although the case is described as being divided into three sections of C, the switching control bits are generally set to (Ka1, Ka2, Ka3), (N) even when n (n = 1, 2, 3, 4,...). Kb1, Kb
2, Kb3),..., (Kn1, Kn2, Kn3) can be applied to a case where a redundant configuration of n sections is adopted.

【0023】[0023]

【発明の効果】以上の説明から明らかなように、本発明
によれば、冗長構成区間の切替と障害箇所の特定が容易
な回線監視システムを提供することができる。
As is apparent from the above description, according to the present invention, it is possible to provide a line monitoring system in which switching of a redundant configuration section and identification of a failure point are easy.

【図面の簡単な説明】[Brief description of the drawings]

【図1】本発明の実施形態を示すブロック構成図。FIG. 1 is a block diagram showing an embodiment of the present invention.

【図2】本実施形態の動作を説明するための切替制御ビ
ットの定義説明図。
FIG. 2 is an explanatory view of the definition of a switching control bit for explaining the operation of the embodiment.

【図3】本実施形態の動作を説明するための0系障害発
生時の切替制御ビット説明図。
FIG. 3 is an explanatory diagram of switching control bits at the time of occurrence of a system 0 failure for explaining the operation of the present embodiment.

【図4】本実施形態の動作を説明するための区間Aのみ
予備系選択時の切替制御ビット説明図。
FIG. 4 is an explanatory diagram of switching control bits when a standby system is selected only in a section A for explaining the operation of the present embodiment.

【図5】区間Aのみの予備系選択時のブロック構成図。FIG. 5 is a block diagram illustrating a standby system only in a section A when a standby system is selected;

【図6】区間A,B予備系選択時の切替制御ビット説明
FIG. 6 is an explanatory diagram of switching control bits when a section A and B standby system is selected.

【図7】区間A,B予備系選択時のブロック構成図。FIG. 7 is a block diagram of a section A, B when a standby system is selected.

【図8】従来例のブロック構成図。FIG. 8 is a block diagram of a conventional example.

【図9】従来例の切替制御ビット説明図。FIG. 9 is an explanatory diagram of switching control bits according to a conventional example.

【符号の説明】[Explanation of symbols]

1 分岐部 2〜9 インタフェース部 10 選択部 101〜105 選択回路 201、202 装置内監視点 301〜304 切替制御ビット挿入検出部 401 切替制御部 501 障害箇所判定部 Reference Signs List 1 branching unit 2-9 interface unit 10 selecting unit 101-105 selecting circuit 201, 202 monitoring point in device 301-304 switching control bit insertion detecting unit 401 switching control unit 501 fault location determining unit

Claims (3)

【特許請求の範囲】[Claims] 【請求項1】 送信装置より送信された信号を回線を通
じて伝送する際に、回線をn(n=1,2,3…)箇所
でそれぞれ冗長回線に交絡し、受信装置で最終的に特定
の回線に切り替える回線監視システムにおいて、 最終交絡区間の監視結果に基づいて一方の回線に障害が
発生したことを検出する障害検出手段と、 前記障害検出手段が障害を検出したときに、すべての交
絡区間を他方の回線に同時に切り替えて障害を復旧させ
る手段と、 を設けたことを特徴とする回線監視システム。
When transmitting a signal transmitted from a transmission device through a line, the line is entangled with a redundant line at each of n (n = 1, 2, 3,...), And finally the reception device specifies a specific line. In a line monitoring system for switching to a line, a failure detecting means for detecting that a failure has occurred in one of the lines based on the monitoring result of the last confounding section; and Means for simultaneously switching to the other line to recover from the failure, and a line monitoring system provided with:
【請求項2】 障害が発生した回線の障害箇所を特定す
る障害箇所特定手段をさらに備え、伝送される信号の空
きタイムスロットを利用して送信側と受信側との間で双
方向通信を行い、前記一方の回線の最終交絡区間での監
視結果に基づいて冗長構成毎に回線切替を行うことを特
徴とする請求項1記載の回線監視システム。
2. A system according to claim 1, further comprising a fault location specifying means for specifying a fault location of the faulty line, and performing bidirectional communication between the transmitting side and the receiving side using an empty time slot of a signal to be transmitted. 2. The line monitoring system according to claim 1, wherein line switching is performed for each redundant configuration based on a monitoring result of the one line in a final confounding section.
【請求項3】 前記障害箇所特定手段は、個々の交絡区
間を所定の切替制御指令によって切り替え、その交絡区
間の切替に際して前記回線の最終区間での監視結果をも
とに自動的に障害箇所を切り分けるように構成されてい
ることを特徴とする請求項2記載の回線監視システム。
3. The fault location specifying means switches the individual confounding sections according to a predetermined switching control command, and automatically switches the confounding sections based on the monitoring result in the last section of the line when switching the confounding sections. 3. The line monitoring system according to claim 2, wherein the line monitoring system is configured to be separated.
JP03784198A 1998-02-19 1998-02-19 Line monitoring system Expired - Fee Related JP3484667B2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP03784198A JP3484667B2 (en) 1998-02-19 1998-02-19 Line monitoring system

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP03784198A JP3484667B2 (en) 1998-02-19 1998-02-19 Line monitoring system

Publications (2)

Publication Number Publication Date
JPH11234366A true JPH11234366A (en) 1999-08-27
JP3484667B2 JP3484667B2 (en) 2004-01-06

Family

ID=12508768

Family Applications (1)

Application Number Title Priority Date Filing Date
JP03784198A Expired - Fee Related JP3484667B2 (en) 1998-02-19 1998-02-19 Line monitoring system

Country Status (1)

Country Link
JP (1) JP3484667B2 (en)

Also Published As

Publication number Publication date
JP3484667B2 (en) 2004-01-06

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