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TLC2543是TI公司的12位串行模數(shù)轉(zhuǎn)換器,使用開關電容逐次逼近技術完成A/D轉(zhuǎn)換過程。由于是串行輸入結(jié)構,能夠節(jié)省51系列單片機I/O資源;且價格適中,分辨率較高,因此在儀器儀表中有較為廣泛的應用。 TLC2543的特點 (1)12位分辯率A/D轉(zhuǎn)換器; (2)在工作溫度范圍內(nèi)10μs轉(zhuǎn)換時間; (3)11個模擬輸入通道; (4)3路內(nèi)置自測試方式; (5)采樣率為66kbps; (6)線性誤差±1LSBmax; (7)有轉(zhuǎn)換結(jié)束輸出EOC; (8)具有單、雙極性輸出; (9)可編程的MSB或LSB前導; (10)可編程輸出數(shù)據(jù)長度。 TLC2543的引腳排列及說明 TLC2543有兩種封裝形式:DB、DW或N封裝以及FN封裝,這兩種封裝的引腳排列如圖1,引腳說明見表1 TLC2543電路圖和程序欣賞 #include<reg52.h> #include<intrins.h> #define uchar unsigned char #define uint unsigned int sbit clock=P1^0; sbit d_in=P1^1; sbit d_out=P1^2; sbit _cs=P1^3; uchar a1,b1,c1,d1; float sum,sum1; double sum_final1; double sum_final; uchar duan[]={0x3f,0x06,0x5b,0x4f,0x66,0x6d,0x7d,0x07,0x7f,0x6f}; uchar wei[]={0xf7,0xfb,0xfd,0xfe}; void delay(unsigned char b) //50us { unsigned char a; for(;b>0;b--) for(a=22;a>0;a--); } void display(uchar a,uchar b,uchar c,uchar d) { P0=duan[a]|0x80; P2=wei[0]; delay(5); P2=0xff; P0=duan[b]; P2=wei[1]; delay(5); P2=0xff; P0=duan[c]; P2=wei[2]; delay(5); P2=0xff; P0=duan[d]; P2=wei[3]; delay(5); P2=0xff; } uint read(uchar port) { uchar i,al=0,ah=0; unsigned long ad; clock=0; _cs=0; port<<=4; for(i=0;i<4;i++) { d_in=port&0x80; clock=1; clock=0; port<<=1; } d_in=0; for(i=0;i<8;i++) { clock=1; clock=0; } _cs=1; delay(5); _cs=0; for(i=0;i<4;i++) { clock=1; ah<<=1; if(d_out)ah|=0x01; clock=0; } for(i=0;i<8;i++) { clock=1; al<<=1; if(d_out) al|=0x01; clock=0; } _cs=1; ad=(uint)ah; ad<<=8; ad|=al; return(ad); } void main() { uchar j; sum=0;sum1=0; sum_final=0; sum_final1=0; while(1) { for(j=0;j<128;j++) { sum1+=read(1); display(a1,b1,c1,d1); } sum=sum1/128; sum1=0; sum_final1=(sum/4095)*5; sum_final=sum_final1*1000; a1=(int)sum_final/1000; b1=(int)sum_final%1000/100; c1=(int)sum_final%1000%100/10; d1=(int)sum_final%10; display(a1,b1,c1,d1); } }
上傳時間: 2013-11-19
上傳用戶:shen1230
#include<iom16v.h> #include<macros.h> #define uint unsigned int #define uchar unsigned char uint a,b,c,d=0; void delay(c) { for for(a=0;a<c;a++) for(b=0;b<12;b++); }; uchar tab[]={ 0xc0,0xf9,0xa4,0xb0,0x99,0x92,0x82,0xf8,0x80,0x90,
上傳時間: 2013-10-21
上傳用戶:13788529953
摘要: 串行傳輸技術具有更高的傳輸速率和更低的設計成本, 已成為業(yè)界首選, 被廣泛應用于高速通信領域。提出了一種新的高速串行傳輸接口的設計方案, 改進了Aurora 協(xié)議數(shù)據(jù)幀格式定義的弊端, 并采用高速串行收發(fā)器Rocket I/O, 實現(xiàn)數(shù)據(jù)率為2.5 Gbps的高速串行傳輸。關鍵詞: 高速串行傳輸; Rocket I/O; Aurora 協(xié)議 為促使FPGA 芯片與串行傳輸技術更好地結(jié)合以滿足市場需求, Xilinx 公司適時推出了內(nèi)嵌高速串行收發(fā)器RocketI/O 的Virtex II Pro 系列FPGA 和可升級的小型鏈路層協(xié)議———Aurora 協(xié)議。Rocket I/O支持從622 Mbps 至3.125 Gbps的全雙工傳輸速率, 還具有8 B/10 B 編解碼、時鐘生成及恢復等功能, 可以理想地適用于芯片之間或背板的高速串行數(shù)據(jù)傳輸。Aurora 協(xié)議是為專有上層協(xié)議或行業(yè)標準的上層協(xié)議提供透明接口的第一款串行互連協(xié)議, 可用于高速線性通路之間的點到點串行數(shù)據(jù)傳輸, 同時其可擴展的帶寬, 為系統(tǒng)設計人員提供了所需要的靈活性[4]。但該協(xié)議幀格式的定義存在弊端,會導致系統(tǒng)資源的浪費。本文提出的設計方案可以改進Aurora 協(xié)議的固有缺陷,提高系統(tǒng)性能, 實現(xiàn)數(shù)據(jù)率為2.5 Gbps 的高速串行傳輸, 具有良好的可行性和廣闊的應用前景。
上傳時間: 2013-11-06
上傳用戶:smallfish
摘要: 串行傳輸技術具有更高的傳輸速率和更低的設計成本, 已成為業(yè)界首選, 被廣泛應用于高速通信領域。提出了一種新的高速串行傳輸接口的設計方案, 改進了Aurora 協(xié)議數(shù)據(jù)幀格式定義的弊端, 并采用高速串行收發(fā)器Rocket I/O, 實現(xiàn)數(shù)據(jù)率為2.5 Gbps的高速串行傳輸。關鍵詞: 高速串行傳輸; Rocket I/O; Aurora 協(xié)議 為促使FPGA 芯片與串行傳輸技術更好地結(jié)合以滿足市場需求, Xilinx 公司適時推出了內(nèi)嵌高速串行收發(fā)器RocketI/O 的Virtex II Pro 系列FPGA 和可升級的小型鏈路層協(xié)議———Aurora 協(xié)議。Rocket I/O支持從622 Mbps 至3.125 Gbps的全雙工傳輸速率, 還具有8 B/10 B 編解碼、時鐘生成及恢復等功能, 可以理想地適用于芯片之間或背板的高速串行數(shù)據(jù)傳輸。Aurora 協(xié)議是為專有上層協(xié)議或行業(yè)標準的上層協(xié)議提供透明接口的第一款串行互連協(xié)議, 可用于高速線性通路之間的點到點串行數(shù)據(jù)傳輸, 同時其可擴展的帶寬, 為系統(tǒng)設計人員提供了所需要的靈活性[4]。但該協(xié)議幀格式的定義存在弊端,會導致系統(tǒng)資源的浪費。本文提出的設計方案可以改進Aurora 協(xié)議的固有缺陷,提高系統(tǒng)性能, 實現(xiàn)數(shù)據(jù)率為2.5 Gbps 的高速串行傳輸, 具有良好的可行性和廣闊的應用前景。
上傳時間: 2013-10-13
上傳用戶:lml1234lml
題目:利用條件運算符的嵌套來完成此題:學習成績>=90分的同學用A表示,60-89分之間的用B表示,60分以下的用C表示。 1.程序分析:(a>b)?a:b這是條件運算符的基本例子。
上傳時間: 2015-01-08
上傳用戶:lifangyuan12
RSA算法 :首先, 找出三個數(shù), p, q, r, 其中 p, q 是兩個相異的質(zhì)數(shù), r 是與 (p-1)(q-1) 互質(zhì)的數(shù)...... p, q, r 這三個數(shù)便是 person_key,接著, 找出 m, 使得 r^m == 1 mod (p-1)(q-1)..... 這個 m 一定存在, 因為 r 與 (p-1)(q-1) 互質(zhì), 用輾轉(zhuǎn)相除法就可以得到了..... 再來, 計算 n = pq....... m, n 這兩個數(shù)便是 public_key ,編碼過程是, 若資料為 a, 將其看成是一個大整數(shù), 假設 a < n.... 如果 a >= n 的話, 就將 a 表成 s 進位 (s
標簽: person_key RSA 算法
上傳時間: 2013-12-14
上傳用戶:zhuyibin
數(shù)字運算,判斷一個數(shù)是否接近素數(shù) A Niven number is a number such that the sum of its digits divides itself. For example, 111 is a Niven number because the sum of its digits is 3, which divides 111. We can also specify a number in another base b, and a number in base b is a Niven number if the sum of its digits divides its value. Given b (2 <= b <= 10) and a number in base b, determine whether it is a Niven number or not. Input Each line of input contains the base b, followed by a string of digits representing a positive integer in that base. There are no leading zeroes. The input is terminated by a line consisting of 0 alone. Output For each case, print "yes" on a line if the given number is a Niven number, and "no" otherwise. Sample Input 10 111 2 110 10 123 6 1000 8 2314 0 Sample Output yes yes no yes no
上傳時間: 2015-05-21
上傳用戶:daguda
源代碼\用動態(tài)規(guī)劃算法計算序列關系個數(shù) 用關系"<"和"="將3個數(shù)a,b,c依次序排列時,有13種不同的序列關系: a=b=c,a=b<c,a<b=v,a<b<c,a<c<b a=c<b,b<a=c,b<a<c,b<c<a,b=c<a c<a=b,c<a<b,c<b<a 若要將n個數(shù)依序列,設計一個動態(tài)規(guī)劃算法,計算出有多少種不同的序列關系, 要求算法只占用O(n),只耗時O(n*n).
標簽: lt 源代碼 動態(tài)規(guī)劃 序列
上傳時間: 2013-12-26
上傳用戶:siguazgb
The government of a small but important country has decided that the alphabet needs to be streamlined and reordered. Uppercase letters will be eliminated. They will issue a royal decree in the form of a String of B and A characters. The first character in the decree specifies whether a must come ( B )Before b in the new alphabet or ( A )After b . The second character determines the relative placement of b and c , etc. So, for example, "BAA" means that a must come Before b , b must come After c , and c must come After d . Any letters beyond these requirements are to be excluded, so if the decree specifies k comparisons then the new alphabet will contain the first k+1 lowercase letters of the current alphabet. Create a class Alphabet that contains the method choices that takes the decree as input and returns the number of possible new alphabets that conform to the decree. If more than 1,000,000,000 are possible, return -1. Definition
標簽: government streamline important alphabet
上傳時間: 2015-06-09
上傳用戶:weixiao99
We have a group of N items (represented by integers from 1 to N), and we know that there is some total order defined for these items. You may assume that no two elements will be equal (for all a, b: a<b or b<a). However, it is expensive to compare two items. Your task is to make a number of comparisons, and then output the sorted order. The cost of determining if a < b is given by the bth integer of element a of costs (space delimited), which is the same as the ath integer of element b. Naturally, you will be judged on the total cost of the comparisons you make before outputting the sorted order. If your order is incorrect, you will receive a 0. Otherwise, your score will be opt/cost, where opt is the best cost anyone has achieved and cost is the total cost of the comparisons you make (so your score for a test case will be between 0 and 1). Your score for the problem will simply be the sum of your scores for the individual test cases.
標簽: represented integers group items
上傳時間: 2016-01-17
上傳用戶:jeffery
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