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electronics.h
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#include "utilities.h"
#include "oled.h"
int wait_after_error = 3000;
bool check_short_circuit()
{
bool error = false;
int data = 0;
float dataV = 0;
digitalWrite(relay, LOW);
for(short int ch = 15; ch > 5; ch--)
{
mux_a.channel(ch);
delay(50);
data = analogRead(sig_a);
dataV = convert_data_to_V(data);
if(debug)
{
print_ch_result(ch, dataV);
}
//if data in analogread exceds
if(data > max_shortV)
{
error = true;
short_circuit_error(ch, dataV);
delay(wait_after_error);
}
}
if(debug)
{
Serial.println(" ");
Serial.println("====== END OF SHORT CIRCUIT TEST ======");
Serial.println(" ");
}
if(error)
{
test_failed();
delay(1000);
return false;
}
return true;
}
bool check_continuity()
{
//Setting hardware enabled
digitalWrite(relay, HIGH);
digitalWrite(en_b, LOW);
delay(500);
bool error = false;
int data = 0;
float dataV = 0;
for(int ch=15; ch>-1; ch--)
{
mux_a.channel(ch);
delay(50);
data = analogRead(sig_a);
dataV = convert_data_to_V(data);
if(debug)
{
print_ch_result(ch, dataV);
}
if (data < min_continuityV)
{
error = true;
continuity_error(ch, dataV, true);
delay(wait_after_error);
}
}
for(int ch=15; ch>11; ch--)
{
mux_b.channel(ch);
delay(50);
data = analogRead(sig_b);
dataV = convert_data_to_V(data);
if(debug)
{
print_ch_result(ch, dataV);
}
if (data < min_continuityV)
{
error = true;
continuity_error(ch, dataV, false);
delay(wait_after_error);
}
}
if(debug){
Serial.println(" ");
Serial.println("====== END OF CONTINUITY TEST ======");
Serial.println(" ");
}
if(error)
{
test_failed();
delay(1000);
return false;
}
return true;
}