退出非零状态

我是编程新手，尝试通过自己学习，我的代码有错误，我不明白这是一个语法错误，或者我犯了错误。我使用了3个方程这是它的条件，并且是为了isntruction而做的，而do-while，if-else，with switch.After我介绍了变量a后，它向我展示了一个错误“退出非零状态”。退出非零状态

#include <stdio.h> 
#include <math.h> 

int main() { 
    float a,x,b; 
    float L; 
    int m; 

    printf("Enter variables a,x,b:"); 
    scanf("%f%f%f,&a,&x,&b"); 
    printf("For using for instruction (enter 1)"); 
    printf("For using while instruction (enter 2)"); 
    printf("For using do-while instruction (enter 3)"); 
    printf("For using ef instruction (enter 4)"); 
    scanf("%d,&m"); 
    switch(m){ 
     case 1: 
      for (x=0;x<1.2;x++) 
      { 
       L=2*cos(x-(3.14/6)); 
      } 
      for (x=0;x>= 1.2 && x<=3.9;x++) 
      { 
       L=x*x/(a+cos(powf((x+b),3))); 
      } 
      for (x=0;x>3.9;x++) 
      { 
       L=fabs(x/2*a)+powf(sin(x+1),2); 
      } 
      break; 
     case 2: 
      while (x<1.2) 
      { 
       L=2*cos(x-(3.14/6)); 
      } 
      while (x>= 1.2 && x<=3.9) 
      { 
       L=x*x/(a+cos(powf((x+b),3))); 
      } 
      while (x>3.9) 
      { 
       L=fabs(x/2*a)+powf(sin(x+1),2); 
      } 
      break; 
     case 3: 
      do 
      { 
       L=2*cos(x-(3.14/6)); 
      } 
      while (x<1.2); 
      do 
      { 
       L=x*x/(a+cos(powf((x+b),3))); 
      } 
      while (x>= 1.2 && x<=3.9); 
      do 
      { 
       L=fabs(x/2*a)+powf(sin(x+1),2); 
      } 
      while (x>3.9); 
      break; 
     case 4: 
      if (x<1.2) 
      { 
       L=2*cos(x-(3.14/6)); 
      } 
      else 
      { 
       printf("First statement is false"); 
      } 
      if(x>= 1.2 && x<=3.9) 
      { 
       L=x*x/(a+cos(powf((x+b),3))); 
      } 
      else 
      { 
       printf("Second statement is false"); 
      } 
      if(x>3.9) 
      { 
       L=fabs(x/2*a)+powf(sin(x+1),2); 
      } 
      else 
      { 
       printf("Third statement is false"); 
      } 
      break; 
     default: 
      printf("\nNo right choices\n"); 
    } 
    printf("Your answer is: L = %.3f,L"); 
}