Monitor channel for multiple transmission channels
The present disclosure relates to an optical module and a method of operating the optical module. The optical module includes transmission channels and a monitor channel. The transmission channels produce a plurality of optical signals. Each transmission channel includes an equalizer circuit and a first converter. The equalizer circuit adjusts a received electrical signal to produce an adjusted electrical signal, and the first converter converts the adjusted electrical signal into the optical signal produced by the respective transmission channel. The monitor channel includes an optical multiplexer, a second converter, and a processing circuit. The optical multiplexer selects a first optical signal produced by a first transmission channel of the plurality of transmission channels. The second converter converts the first optical signal into a first electrical signal. The processing circuit adjusts a first equalizer circuit of the first transmission channel. Adjusting the first equalizer circuit adjusts the first optical signal.
1 . An optical module comprising:
a plurality of transmission channels arranged to produce a plurality of optical signals, each transmission channel of the plurality of transmission channels comprising:
an equalizer circuit arranged to adjust a received electrical signal to produce an adjusted electrical signal; and
a first converter arranged to convert the adjusted electrical signal into the optical signal produced by the respective transmission channel;
a monitor channel comprising:
an optical multiplexer arranged to select a first optical signal produced by a first transmission channel of the plurality of transmission channels, wherein the first transmission channel further comprises at least one of a variable attenuator or a switch arranged to direct the first optical signal to the monitor channel when the optical multiplexer selects the first optical signal;
a second converter arranged to convert the first optical signal into a first electrical signal; and
a processing circuit arranged to adjust a first equalizer circuit of the first transmission channel based on the first electrical signal, wherein adjusting the first equalizer circuit adjusts the first optical signal.
2 . The optical module of claim 1 , wherein the first equalizer circuit of the first transmission channel comprises:
a linear equalizer arranged to compensate for losses in a second electrical signal received by the first equalizer circuit; and
a gain circuit arranged to adjust an amplitude of the second electrical signal, wherein adjusting the first equalizer circuit comprises adjusting the linear equalizer and the gain circuit.
3 . The optical module of claim 1 , wherein the optical multiplexer is further arranged to de-select the first optical signal and to select a second optical signal produced by a second transmission channel of the plurality of transmission channels.
4 . The optical module of claim 3 , wherein the processing circuit is further arranged to adjust a second equalizer circuit of the second transmission channel when the optical multiplexer selects the second optical signal.
5 . The optical module of claim 1 , wherein the monitor channel further comprises a built-in self-test (BIST) circuit, wherein when the BIST circuit is enabled:
the optical multiplexer selects a second optical signal produced by the BIST circuit; and
the second converter converts the second optical signal into a second electrical signal.
6 . The optical module of claim 5 , wherein the BIST circuit comprises:
a generator circuit arranged to generate a bit sequence; and
a third converter arranged to convert the bit sequence into the second optical signal.
7 . The optical module of claim 1 , wherein the first converter and the second converter are matched.
8 . The optical module of claim 1 , wherein the optical multiplexer is arranged to select the first optical signal and other optical signals produced by other transmission channels of the plurality of transmission channels in a round robin fashion.
9 . The optical module of claim 1 , wherein the processing circuit samples the first electrical signal.
10 . A method of operating an optical module comprising:
adjusting, by a first equalizer circuit of a first transmission channel of the optical module, a first electrical signal to produce a first adjusted electrical signal;
converting, by a first converter of the first transmission channel, the first adjusted electrical signal into a first optical signal;
adjusting, by a second equalizer circuit of a second transmission channel of the optical module, a second electrical signal to produce a second adjusted electrical signal;
converting, by a second converter of the second transmission channel, the second adjusted electrical signal into a second optical signal;
selecting, by an optical multiplexer of a monitor channel of the optical module, the first optical signal;
converting, by a third converter of the monitor channel, the first optical signal into a third electrical signal;
when a built-in self-test (BIST) circuit of the monitor channel is enabled:
selecting, by the optical multiplexer, a third optical signal produced by the BIST circuit; and
converting, by the third converter, the third optical signal into a fourth electrical signal; and
adjusting, by a processing circuit of the monitor channel, the first equalizer circuit based on the third electrical signal, wherein adjusting the first equalizer circuit adjusts the first optical signal.
11 . The method of claim 10 , wherein adjusting the first electrical signal comprises:
compensating, by a linear equalizer of the first equalizer circuit, for losses in the first electrical signal; and
adjusting, by a gain circuit of the first equalizer circuit, an amplitude of the first electrical signal, wherein adjusting the first equalizer circuit comprises adjusting the linear equalizer and the gain circuit.
12 . The method of claim 10 , further comprising directing, by at least one of a variable attenuator or a switch of the first transmission channel, the first optical signal to the monitor channel when the optical multiplexer selects the first optical signal.
13 . The method of claim 10 , further comprising:
de-selecting, by the optical multiplexer, the first optical signal; and
selecting, by the optical multiplexer, the second optical signal.
14 . The method of claim 13 , further comprising adjusting, by the processing circuit, a second equalizer circuit of the second transmission channel when the optical multiplexer selects the second optical signal.
15 . The method of claim 10 , further comprising:
generating, by a generator circuit of the BIST circuit, a bit sequence; and
converting, by a fourth converter of the BIST circuit, the bit sequence into the third optical signal.
16 . The method of claim 10 , wherein the first converter and the second converter are matched.
17 . The method of claim 10 , further comprising sampling, by the processing circuit, the first electrical signal.
18 . An optical module comprising:
a first transmission channel comprising:
a first equalizer circuit arranged to adjust a first electrical signal to produce a first adjusted electrical signal; and
a first converter arranged to convert the first adjusted electrical signal into a first optical signal;
a second transmission channel comprising:
a second equalizer circuit arranged to adjust a second electrical signal to produce a second adjusted electrical signal; and
a second converter arranged to convert the second adjusted electrical signal into a second optical signal; and
a monitor channel comprising:
an optical multiplexer arranged to select the first optical signal;
a third converter arranged to convert the first optical signal into a third electrical signal;
a built-in self-test (BIST) circuit comprising (i) a generator circuit arranged to generate a bit sequence and (ii) a fourth converter arranged to convert the bit sequence into a third optical signal, wherein when the BIST circuit is enabled:
the optical multiplexer selects the third optical signal; and
the third converter converts the third optical signal into a fourth electrical signal; and
a processing circuit arranged to adjust the first equalizer circuit based on the third electrical signal, wherein adjusting the first equalizer circuit adjusts the first optical signal.