US 12,262,080 B2
HDMI fiber-optic extender
Wen-Shuo Liao, Taipei (TW); and Jen-Hsiu Lu, New Taipei (TW)
Assigned to WAVESPLITTER TECHNOLOGIES, INC., New Taipei (TW)
Filed by WAVESPLITTER TECHNOLOGIES, INC., New Taipei (TW)
Filed on Oct. 5, 2023, as Appl. No. 18/481,853.
Claims priority of application No. 112103838 (TW), filed on Feb. 3, 2023.
Prior Publication US 2024/0267587 A1, Aug. 8, 2024
Int. Cl. H04N 21/4363 (2011.01); H04B 10/50 (2013.01); H04B 10/60 (2013.01)
CPC H04N 21/43635 (2013.01) [H04B 10/503 (2013.01); H04B 10/60 (2013.01)] 2 Claims
OG exemplary drawing
 
1. A high-definition multimedia interface (HDMI) fiber-optic extender for providing long-distance signal transmission between a signal transmitting device and a signal receiving device, said HDMI fiber-optic extender comprising:
a fiber-optic assembly including a first fiber-optic cable and a second fiber-optic cable, each of said first and second fiber-optic cables including a single-core optical fiber, and two connection plugs respectively connected to two opposite ends of said single-core optical fiber;
an HDMI optical transmitter formed with a first connection socket that is connected to one of said connection plugs of said first fiber-optic cable, and a second connection socket that is connected to one of said connection plugs of said second fiber-optic cable, said HDMI optical transmitter including
a first HDMI interface configured to receive an HDMI input from the signal transmitting device, the HDMI input including a first high-frequency data signal, a second high-frequency data signal, a third high-frequency data signal, a high-frequency clock signal, a first low-frequency data signal and a first low-frequency clock signal, the first to third high-frequency data signals and the high-frequency clock signal being related to video, the first low-frequency data signal and the first low-frequency clock signal being related to communication between the signal transmitting device and the signal receiving device,
a first serializer/deserializer connected to said first HDMI interface, and configured to serialize the first low-frequency data signal and the first low-frequency clock signal from said first HDMI interface so as to generate a first control signal,
a first laser driver connected to said first HDMI interface and said first serializer/deserializer, and configured to generate a first drive signal, a second drive signal, a third drive signal, a fourth drive signal and a fifth drive signal respectively based on the first control signal from said first serializer/deserializer and the first to third high-frequency data signals and the high-frequency clock signal from said first HDMI interface,
a tri-direction transmitter optical sub-assembly connected to said first laser driver, and configured to generate a first optical signal, a second optical signal and a third optical signal respectively based on the first to third drive signals from said first laser driver, and to couple the first to third optical signals onto said first fiber-optic cable, the first to third optical signals having different wavelengths,
a first tri-direction optical sub-assembly connected to said first laser driver, and configured to generate a fourth optical signal and a fifth optical signal respectively based on the fourth and fifth drive signals from said first laser driver, and to couple the fourth and fifth optical signals onto said second fiber-optic cable, the fourth and fifth optical signals having different wavelengths, and
a first current to voltage converter connected to said first tri-direction optical sub-assembly and said first serializer/deserializer; and
an HDMI optical receiver formed with a third connection socket that is connected to the other one of said connection plugs of said first fiber-optic cable, and a fourth connection socket that is connected to the other one of said connection plugs of said second fiber-optic cable, said HDMI optical receiver including
a tri-direction receiver optical sub-assembly configured to receive the first to third optical signals from said first fiber-optic cable, and to convert the first to third optical signals respectively into a first current signal, a second current signal and a third current signal,
a second tri-direction optical sub-assembly configured to receive the fourth and fifth optical signals from said second fiber-optic cable, and to convert the fourth and fifth optical signals respectively into a fourth current signal and a fifth current signal,
a second current to voltage converter connected to said tri-direction receiver optical sub-assembly and said second tri-direction optical sub-assembly, and configured to perform current to voltage conversion on the first to fifth current signals from said tri-direction receiver optical sub-assembly and said second tri-direction optical sub-assembly so as to respectively generate the first control signal, the first to third high-frequency data signals and the high-frequency clock signal,
a second laser driver connected to said second tri-direction optical sub-assembly,
a second serializer/deserializer connected to said second laser driver and said second current to voltage converter, and configured to deserialize the first control signal from said second current to voltage converter so as to generate the first low-frequency data signal and the first low-frequency clock signal, and
a second HDMI interface connected to said second current to voltage converter and said second serializer/deserializer, and configured to transmit the first to third high-frequency data signals and the high-frequency clock signal from said second current to voltage converter and the first low-frequency data signal and the first low-frequency clock signal from said second serializer/deserializer to the signal receiving device;
wherein, when said second HDMI interface receives a second low-frequency data signal and a second low-frequency clock signal that are generated by the signal receiving device in response to the first low-frequency data signal and the first low-frequency clock signal after the signal transmitting device transmits the first low-frequency data signal and the first low-frequency clock signal to the signal receiving device via said HDMI fiber-optic extender and before the signal transmitting device transmits the first to third high-frequency data signals and the high-frequency clock signal,
said second serializer/deserializer serializes the second low-frequency data signal and the second low-frequency clock signal from said second HDMI interface so as to generate a second control signal,
said second laser driver generates a sixth drive signal based on the second control signal from said second serializer/deserializer,
said second tri-direction optical sub-assembly generates a sixth optical signal based on the sixth drive signal from said second laser driver, and couples the sixth optical signal onto said second fiber-optic cable, the sixth optical signal having a wavelength different from those of the fourth and fifth optical signals,
said first tri-direction optical sub-assembly receives the sixth optical signal from said second fiber-optic cable, and converts the sixth optical signal into a sixth current signal,
said first current to voltage converter performs current to voltage conversion on the sixth current signal from said first tri-direction optical sub-assembly so as to generate the second control signal,
said first serializer/deserializer deserializes the second control signal from said first current to voltage converter so as to generate the second low-frequency data signal and the second low-frequency clock signal, and
said first HDMI interface transmits the second low-frequency data signal and the second low-frequency clock signal from said first serializer/deserializer to the signal transmitting device.