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R. W. Chang, “Orthogonal frequency division multiplexing,” U.S. Patent 3, pp. 488–445, filed 1966, issued January 6, 1970.

  • Listed: 1 August 2026 6 h 20 min

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R. W. Chang, “Orthogonal frequency division multiplexing,” U.S. Patent 3, pp. 488–445, filed 1966, issued January 6, 1970.

**Orthogonal Frequency Division Multiplexing**

In the vast world of telecommunications, wireless communication technologies have come a long way, thanks to innovative research and development. One of the key technologies that have shaped modern wireless communication is Orthogonal Frequency Division Multiplexing (OFDM), a method of multiplexing developed by R. W. Chang. In 1966, Chang filed a patent for this groundbreaking technology, which was later issued on January 6, 1970. Today, OFDM is a crucial component of modern wireless communication systems, offering numerous benefits that have made it an essential technology for 5G networks, Wi-Fi, and other high-speed wireless applications.

At its core, OFDM is a technique that allows multiple independent data streams to share the same transmission bandwidth by dividing the available bandwidth into multiple narrow sub-carriers. This process enables efficient use of bandwidth and minimizes interference between the sub-carriers, resulting in high data transfer rates and efficient transmission. OFDM achieves orthogonality by ensuring that the data transmitted on each sub-carrier does not overlap with the data transmitted on other sub-carriers, a property that ensures that the signal can be efficiently transmitted and received with minimal distortion.

The key advantages of OFDM are its ability to efficiently transmit data over channels with frequency-selective fading, also known as fading in the channel. Fading occurs when the high-frequency data is severely affected by the channel, while low-frequency data is not. Traditional modulation techniques struggle to maintain data transfer rates under these conditions, but OFDM’s orthogonality property makes it possible to achieve high data transfer rates even in channels with severe fading. This is particularly important in wireless communication systems where data transfer rates can be significantly affected by environmental factors such as foliage, buildings, or other obstacles.

In addition to its ability to combat fading, OFDM also offers high-speed data transfer rates. When combined with techniques like Multiple Input Multiple Output (MIMO) and Space Time Coding (STC), OFDM achieves high spectral efficiency and can deliver data transfer rates of up to several Gbps. These characteristics have made OFDM an essential component of modern wireless communication systems, including 5G networks, Wi-Fi, and other high-speed wireless applications. As wireless communication technology continues to evolve, it is likely that OFDM will remain a cornerstone of modern telecommunications, enabling fast, efficient, and reliable communication over vast distances.

In conclusion, R. W. Chang’s invention of OFDM has had a profound impact on modern telecommunications. By dividing the available bandwidth into multiple narrow sub-carriers and achieving orthogonality, OFDM has enabled high-speed data transfer rates over channels with frequency-selective fading, making it an essential technology for 5G networks, Wi-Fi, and other high-speed wireless applications. As wireless communication technology continues to evolve, it is likely that OFDM will remain a cornerstone of modern telecommunications, shaping the future of wireless communication for years to come.

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