資料介紹
今天的世界充滿了數(shù)字和模擬信號(hào)。雖然這些信號(hào)的表現(xiàn)不同,但它們通常都用來(lái)幫助實(shí)現(xiàn)更大的目標(biāo)。想象工程師負(fù)責(zé)控制空調(diào)機(jī)組。如果計(jì)劃使用任何一種微控制器或微處理器,就必須能夠讀取具有無(wú)限量值的模擬溫度,并將其轉(zhuǎn)換為離散步驟中的二進(jìn)制表示形式。這種模擬值的二進(jìn)制表示將由微控制器或微處理器處理。這些數(shù)據(jù)將被用來(lái)幫助執(zhí)行一個(gè)過(guò)程的暖通空調(diào)單位,以幫助維持穩(wěn)定的環(huán)境。在處理需要由數(shù)字系統(tǒng)處理的模擬值時(shí),模數(shù)轉(zhuǎn)換器(ADC)是勢(shì)在必行的。同樣的理論可以應(yīng)用于需要轉(zhuǎn)換成模擬信號(hào)的數(shù)字信號(hào)。在線播放一首歌曲涉及到使用數(shù)字信號(hào)轉(zhuǎn)換為模擬信號(hào)的幾個(gè)不同步驟。主機(jī)設(shè)備從服務(wù)器接收到的信號(hào)將是原始模擬信號(hào)的二進(jìn)制表示。這個(gè)二進(jìn)制數(shù)據(jù)的可聽(tīng)響應(yīng)對(duì)聽(tīng)者來(lái)說(shuō)是不可理解的。原始信號(hào)是模擬的,所以最后的表示也需要模擬。通過(guò)使用數(shù)模轉(zhuǎn)換器(DAC)解決了這個(gè)問(wèn)題。這種類型的設(shè)備需要一個(gè)二進(jìn)制代碼,它可以由模數(shù)轉(zhuǎn)換器進(jìn)行編碼,并將其轉(zhuǎn)換成模擬電壓。
Converting signals from analog to digital or digital to analog is an unavoidable task for today‘s engineer. There are many different kinds of analog to digital converters and digital to analog converters. While these differ in their architecture, they all work to achieve a similar end. Since digital signal processing cannot be done with analog values, it would be analogous to a French speaking person trying to speak with a German speaking person. It would not work without a translator. ADC and DAC devices can help to act like that translator. When an ADC sees an analog voltage, its job is to turn the analog voltage into a binary code at a given period of time. This means the ADC will sample the analog voltage at an instant, and then it determines what the value would be in binary on the output side of the ADC. The amount of samples that the device takes every second will be called out on its documentation. An example of this would be the MAX1118EKA+T from Maxim Integrated. This device has a 100 kHz sampling rate so it can sample the analog voltage on its input side 100,000 times per second. By being able to take that many samples in a second, it is possible to accurately log what the analog voltage looked like by using a binary interpretation. Sometimes the sample rate of an ADC is not high enough to accurately recreate its input which causes aliasing. This is where signals start to be indistinguishable from one another, or aliases of one another. Imagine a video camera that can take 24 frames per second when recording. For most applications this will be fine; however, if trying to view something that is moving very fast, this can distort the image. Recall the effect of watching a television on a recording in the late nineties. The image on the television would be flickering. This is because the refresh rate on the television itself is much faster than the recording can capture at its given frames per second. The image would be distorted because the video is actually a succession of pictures. There is more happening between each picture than is actually being represented on the video. The same kind of effect can happen with an ADC. To avoid this, it is pertinent to make sure the sample rate is at least two times higher than the highest frequency that needs to be transmitted. This is referred to as the Nyquist rate.
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