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π€―β’ Pay Only When you land a JOB. Yes, You are right!! Why pay hefty amount on courses Initially ?
π»β’ A 9 Months coding bootcamp on Web Development- Learn Full Stack development, DS and Algo, System Design and work on various course projects.
π΅. An Average Package of 7.8 Lakhs offered among all the batches of career camp.
π€. A dedicated Placement support for the students with over 50 opportunities a week
πβ’ Get Your career Started in product based organisations like RazorPAy, Paytm, Snaphunt etc.
Only few seats remain!!
Register Now- https://bit.ly/3H2IUL4
Last date for the registration- 30th Jan
Forwarded from Off Campus job Updates- Placement Material
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Channel name was changed to Β«Infosys Revature Exam SOLUTION / ALL EXAM SOLUTIONΒ»
def check(a,n)
if n==1:
return 1
a.sort()
c=0
i=0
while(i<n-1):
if a[i+1]-a[i]==1:
i=i+2
c=c+1
else:
i=i+1
if c:
return c
else:
return 1
n=int(input())
a=[]
for i in range(n):
a.append(int(input()))
print(check(a,n))
Python
Whales code
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if n==1:
return 1
a.sort()
c=0
i=0
while(i<n-1):
if a[i+1]-a[i]==1:
i=i+2
c=c+1
else:
i=i+1
if c:
return c
else:
return 1
n=int(input())
a=[]
for i in range(n):
a.append(int(input()))
print(check(a,n))
Python
Whales code
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def minOps(A, B):
m = len(A)
n = len(B)
# This part checks whether conversion is possible or not
if n != m:
return -1
count = [0] * 256
for i in range(n): # count characters in A
count[ord(B[i])] += 1
for i in range(n): # subtract count for every char in B
count[ord(A[i])] -= 1
for i in range(256): # Check if all counts become 0
if count[i]:
return -1
# This part calculates the number of operations required
res = 0
i = n-1
j = n-1
while i >= 0:
# if there is a mismatch, then keep incrementing
# result 'res' until B[j] is not found in A[0..i]
while i>= 0 and A[i] != B[j]:
i -= 1
res += 1
# if A[i] and B[j] match
if i >= 0:
i -= 1
j -= 1
return res
# Driver program
A = "EACBD"
B = "EABCD"
print ("Minimum number of operations required is " + str(minOps(A,B)))
Python
Minimum number of operations required Code
β
http://t.me/Coding_solution_0
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http://t.me/Coding_solution_0
m = len(A)
n = len(B)
# This part checks whether conversion is possible or not
if n != m:
return -1
count = [0] * 256
for i in range(n): # count characters in A
count[ord(B[i])] += 1
for i in range(n): # subtract count for every char in B
count[ord(A[i])] -= 1
for i in range(256): # Check if all counts become 0
if count[i]:
return -1
# This part calculates the number of operations required
res = 0
i = n-1
j = n-1
while i >= 0:
# if there is a mismatch, then keep incrementing
# result 'res' until B[j] is not found in A[0..i]
while i>= 0 and A[i] != B[j]:
i -= 1
res += 1
# if A[i] and B[j] match
if i >= 0:
i -= 1
j -= 1
return res
# Driver program
A = "EACBD"
B = "EABCD"
print ("Minimum number of operations required is " + str(minOps(A,B)))
Python
Minimum number of operations required Code
β
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def minOps(A, B):
m = len(A)
n = len(B)
# This part checks whether conversion is possible or not
if n != m:in
return -1
count = [0] * 256
for i in range(n): # count characters in A
count[ord(B[i])] += 1
for i in range(n): # subtract count for every char in B
count[ord(A[i])] -= 1
for i in range(256): # Check if all counts become 0
if count[i]:
return -1
# This part calculates the number of operations required
res = 0
i = n-1
j = n-1
while i >= 0:
# if there is a mismatch, then keep incrementing
# result 'res' until B[j] is not found in A[0..i]
while i>= 0 and A[i] != B[j]:
i -= 1
res += 1
# if A[i] and B[j] match
if i >= 0:
i -= 1
j -= 1
return res
# Driver program
A = "EACBD"
B = "EABCD"
print ("Minimum number of operations required is " + str(minOps(A,B)))
β Telegram- Send the Question here β€οΈπ
https://t.me/good_coders
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m = len(A)
n = len(B)
# This part checks whether conversion is possible or not
if n != m:in
return -1
count = [0] * 256
for i in range(n): # count characters in A
count[ord(B[i])] += 1
for i in range(n): # subtract count for every char in B
count[ord(A[i])] -= 1
for i in range(256): # Check if all counts become 0
if count[i]:
return -1
# This part calculates the number of operations required
res = 0
i = n-1
j = n-1
while i >= 0:
# if there is a mismatch, then keep incrementing
# result 'res' until B[j] is not found in A[0..i]
while i>= 0 and A[i] != B[j]:
i -= 1
res += 1
# if A[i] and B[j] match
if i >= 0:
i -= 1
j -= 1
return res
# Driver program
A = "EACBD"
B = "EABCD"
print ("Minimum number of operations required is " + str(minOps(A,B)))
β Telegram- Send the Question here β€οΈπ
https://t.me/good_coders
https://t.me/good_coders
https://t.me/good_coders
Channel name was changed to Β«TCS NQT Infosys Exam SOLUTION / ALL EXAM SOLUTIONΒ»
Reasoning 10 am slot
1 197
2 341
3 304
4.73
5.858
6.1192
7.I
8.A
9.C
Telegram-
http://t.me/Coding_solution_0
http://t.me/Coding_solution_0
http://t.me/Coding_solution_0
1 197
2 341
3 304
4.73
5.858
6.1192
7.I
8.A
9.C
Telegram-
http://t.me/Coding_solution_0
http://t.me/Coding_solution_0
http://t.me/Coding_solution_0
Telegram
Off Campus Job Update
500+ Placement & Competitive Exam Materials
75+ Companies Materials
100+ JOB Updates in a Month
πDM for Promotion @Wren_0
πPlacement Updates: @offcampusjobs_0
π Placment Material: @placement_materials0
75+ Companies Materials
100+ JOB Updates in a Month
πDM for Promotion @Wren_0
πPlacement Updates: @offcampusjobs_0
π Placment Material: @placement_materials0
Forwarded from Off Campus Job Update
Join Us For Daily Job Updates π£
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Python
Courth house Codeβ β
Telegram
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Courth house Codeβ β
Telegram
http://t.me/Coding_solution_0
http://t.me/Coding_solution_0
http://t.me/Coding_solution_0
#include<bits/stdc++.h>
using namespace std;
int main(){
int n ;
cin>>n;
vector<int>a(n);
vector<int>b(n);
for(int i=0;i<n;i++)
cin>>a[i];
for(int i=0;i<n;i++)
cin>>b[i];
int ans=1;
for(int i=0;i<n;i++)
{
int temp=1;
for(int j=i+1;j<n;j++)
{
if((a[i]>=a[j] && a[i]<=b[j]) || (a[j]>=a[i] && a[j]<=b[i] ))
temp++;
}
ans= max(ans,temp);
}
cout<<ans;
return 0;
}
Python
Courth house Codeβ β
Telegram
http://t.me/Coding_solution_0
http://t.me/Coding_solution_0
http://t.me/Coding_solution_0
using namespace std;
int main(){
int n ;
cin>>n;
vector<int>a(n);
vector<int>b(n);
for(int i=0;i<n;i++)
cin>>a[i];
for(int i=0;i<n;i++)
cin>>b[i];
int ans=1;
for(int i=0;i<n;i++)
{
int temp=1;
for(int j=i+1;j<n;j++)
{
if((a[i]>=a[j] && a[i]<=b[j]) || (a[j]>=a[i] && a[j]<=b[i] ))
temp++;
}
ans= max(ans,temp);
}
cout<<ans;
return 0;
}
Python
Courth house Codeβ β
Telegram
http://t.me/Coding_solution_0
http://t.me/Coding_solution_0
http://t.me/Coding_solution_0