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EE 382M VLSI–II: Advanced Circuit Design Lecture 12: I/O & ESD
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... wired to ground, the user has the ability to include some dead-- time, helping to fight cross-- conduction between the upper and the lower transistor.  Adjustable soft-- start: Every time the controller starts to operate (power on), the switching frequency is pushed to the programmed maximum value ...
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... the analog reference will cause a change in the converted digital value. For example, with an analog reference of 3.3 V and a 1 V signal input, the converted result is (1/3.3) × 4095 = 4D9h But with a 40 mV peak-to-peak ripple in the power supply, the converted value becomes (1/3.34) × 4095 = 4CAh ( ...
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... All unused inputs of the device must be held at VCC or GND to ensure proper device operation. Refer to the TI application report, Implications of Slow or Floating CMOS Inputs, literature number SCBA004. Proper connection sequence for use of the B-port I/O precharge feature is GND and BIAS VCC = 3.3 ...
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... wireless communication systems is rapidly increasing. It can be seen from fast-growing coverage of high-speed mobile networks, such as UMTS, LTE, WiMAX. Also wireless networks, working at 5 GHz frequency (802.11n, 802.11ac), become common for home users. To support many different wireless standarts ...
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Time-to-digital converter



In electronic instrumentation and signal processing, a time to digital converter (abbreviated TDC) is a device for recognizing events and providing a digital representation of the time they occurred. For example, a TDC might output the time of arrival for each incoming pulse. Some applications wish to measure the time interval between two events rather than some notion of an absolute time.In electronics time-to-digital converters (TDCs) or time digitizers are devices commonly used to measure a time interval and convert it into digital (binary) output. In some cases interpolating TDCs are also called time counters (TCs).TDCs are used in many different applications, where the time interval between two signal pulses (start and stop pulse) should be determined. Measurement is started and stopped, when either the rising or the falling edge of a signal pulse crosses a set threshold. These requirements are fulfilled in many physical experiments, like time-of-flight and lifetime measurements in atomic and high energy physics, experiments that involve laser ranging and electronic research involving the testing of integrated circuits and high-speed data transfer.
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