Difference between C++ openssl/aes and Go crypto/aes - c++

I have two programs on C++ and Go for encrypt data using AES, but they returns different results. Could you explain me the difference? How I can write similar code to get the same result using Go?
C++
g++ aes.cpp -o aes -O3 -lcrypto -std=c++11 && ./aes
#include <iostream>
#include <openssl/aes.h>
using std::cout;
int main(int argc, char const *argv[]) {
uint8_t result[16] = {0};
uint8_t key[32] = {
52, 51, 51, 100, 52, 53, 98, 57, 51, 98, 98, 98, 102, 102, 56, 100,
54, 53, 53, 49, 55, 56, 54, 51, 50, 102, 49, 56, 101, 97, 101, 97,
};
uint8_t data[16] = {
89, 0, 192, 238, 251, 3, 19, 11, 0, 0, 0, 0, 0, 15, 0, 236,
};
AES_KEY ctx;
AES_set_encrypt_key(&key[0], 128, &ctx);
AES_encrypt(data, result, &ctx);
std::cout << "Result: ";
for (auto const& value: result) {
std::cout << unsigned(value) << ",";
}
std::cout << '\n';
return 0;
}
Result: 65,68,199,89,141,129,6,202,211,198,47,54,212,0,243,130
Go
package main
import (
"crypto/aes"
"log"
)
func main() {
result := make([]byte, 16)
key := []byte{
52, 51, 51, 100, 52, 53, 98, 57, 51, 98, 98, 98, 102, 102, 56, 100,
54, 53, 53, 49, 55, 56, 54, 51, 50, 102, 49, 56, 101, 97, 101, 97,
}
data := []byte{89, 0, 192, 238, 251, 3, 19, 11, 0, 0, 0, 0, 0, 15, 0, 236}
cipher, err := aes.NewCipher(key)
if err != nil {
log.Fatal(err)
}
cipher.Encrypt(result, data)
log.Println(result)
}
Result: 18 144 147 200 175 53 202 191 80 17 142 126 228 220 57 180

Related

Inlined function to return nested array value not performing as expected

I want to inline the function MyClass:at(), but performance isn't as I expect.
MyClass.cpp
#include <algorithm>
#include <chrono>
#include <iostream>
#include <vector>
#include <string>
// Making this a lot shorter than in my actual program
std::vector<std::vector<int>> arrarr =
{
{ 1, 70, 54, 71, 83, 51, 54, 69, 16, 92, 33, 48, 61, 43, 52, 1, 89, 19, 67, 48},
{24, 47, 32, 60, 99, 3, 45, 2, 44, 75, 33, 53, 78, 36, 84, 20, 35, 17, 12, 50},
{32, 98, 81, 28, 64, 23, 67, 10, 26, 38, 40, 67, 59, 54, 70, 66, 18, 38, 64, 70},
{67, 26, 20, 68, 2, 62, 12, 20, 95, 63, 94, 39, 63, 8, 40, 91, 66, 49, 94, 21},
{24, 55, 58, 5, 66, 73, 99, 26, 97, 17, 78, 78, 96, 83, 14, 88, 34, 89, 63, 72},
{21, 36, 23, 9, 75, 0, 76, 44, 20, 45, 35, 14, 0, 61, 33, 97, 34, 31, 33, 95},
{78, 17, 53, 28, 22, 75, 31, 67, 15, 94, 3, 80, 4, 62, 16, 14, 9, 53, 56, 92},
{16, 39, 5, 42, 96, 35, 31, 47, 55, 58, 88, 24, 0, 17, 54, 24, 36, 29, 85, 57},
{86, 56, 0, 48, 35, 71, 89, 7, 5, 44, 44, 37, 44, 60, 21, 58, 51, 54, 17, 58},
{19, 80, 81, 68, 5, 94, 47, 69, 28, 73, 92, 13, 86, 52, 17, 77, 4, 89, 55, 40},
{ 4, 52, 8, 83, 97, 35, 99, 16, 7, 97, 57, 32, 16, 26, 26, 79, 33, 27, 98, 66},
{88, 36, 68, 87, 57, 62, 20, 72, 3, 46, 33, 67, 46, 55, 12, 32, 63, 93, 53, 69},
{ 4, 42, 16, 73, 38, 25, 39, 11, 24, 94, 72, 18, 8, 46, 29, 32, 40, 62, 76, 36},
{20, 69, 36, 41, 72, 30, 23, 88, 34, 62, 99, 69, 82, 67, 59, 85, 74, 4, 36, 16},
{20, 73, 35, 29, 78, 31, 90, 1, 74, 31, 49, 71, 48, 86, 81, 16, 23, 57, 5, 54},
{ 1, 70, 54, 71, 83, 51, 54, 69, 16, 92, 33, 48, 61, 43, 52, 1, 89, 19, 67, 48},
};
class MyClass
{
public:
MyClass(std::vector<std::vector<int>> arr) : arr(arr)
{
rows = arr.size();
cols = arr.at(0).size();
}
inline auto at(int row, int col) const { return arr[row][col]; }
void arithmetic(int n) const;
private:
std::vector<std::vector<int>> arr;
int rows;
int cols;
};
MyClass.cpp:
void MyClass::arithmetic(int n) const
{
using std::chrono::high_resolution_clock;
using std::chrono::duration_cast;
using std::chrono::duration;
using std::chrono::milliseconds;
auto t1 = high_resolution_clock::now();
int highest_product = 0;
for (auto y = 0; y < rows; ++y)
{
for (auto x = 0; x < cols; ++x)
{
// Horizontal product
if (x + n < cols)
{
auto product = 1;
for (auto i = 0; i < n; ++i)
{
product *= at(y, x + i);
}
highest_product = std::max(highest_product, product);
}
}
}
auto t2 = high_resolution_clock::now();
duration<double, std::milli> ms_double = t2 - t1;
std::cout << ms_double.count() << "ms\n";
return highestProduct;
};
Now what I want know is why do I get better performance when I replace product *= at(y, x + i); with product *= arr[y][x+i];? When I test it with the first case, the timing on my large array takes roughly 6.7ms, and the second case takes 5.3ms. I thought when I inlined the function, it should be the same implementation as the second case.
Member function directly defined in the class definition (typically in header files) are implicitly inlined so using inline is useless in this case. inline do not guarantee the function is inlined. It is just an hint for the compiler. The keyword is also an important during the link to avoid the multiple-definition issue. Function that are not make inline can still be inlined if the compiler can see the code of the target function (ie. it is in the same translation unit or link time optimization are applied). For more information about this, please read Why are class member functions inlined?
Note that the inlining is typically performed in the optimization step of compilers (eg. -O1//O1). Thus without optimizations, most compilers will not inline the function.
Using std::vector<std::vector<int>> is not efficient since it is not a contiguous data structure and it require 2 indirection to access an item. Two sub-vectors next to each other can be stored far away in memory likely causing more cache misses (and/or thrashing due to the alignment). Please consider using one big flatten array and access items using y*cols+x where cols is the size of the sub-vectors (20 here). Alternatively a int[16][20] data type should do the job well if the size if fixed at compile-time.
MyClass(std::vector<std::vector<int>> arr) cause the input parameter to be copied (and so all the sub-vectors). Please consider using a const std::vector<std::vector<int>>& type.
While at is convenient for checking bounds at runtime, this feature can strongly decrease performance. Consider using the operator [] if you do not need that. You can use assertions combined with flatten arrays so to get a fast code in release and a safe code in debug (you can enable/disable them by defining the NDEBUG macro).

Faster tetrahedron-tetrahedron intersection

For one project of mine I require reliable detection of intersection between two tetrahedrons in 3D space. I do not need the points/lines/faces just to know if intersection is present or not. Touching is considered intersection too but common triangle face is not considered as intersection. After quite a struggle to achieve this as fast as possible my solution boiled to this horribility:
let have tetrahedrons v0,v1
each tetrahedron has 4 triangles t[4] where each triangle has 3 points p0,p1,p2 and normal vector n.
compute planes of all 4 sides of both tetrahedrons
so any point p on plane is given by equation
dot(p,n) + d = 0
where n is normal of the plane. As that is known this boils to computing d
D0[i] = -dot(v0.t[i].p0,v0.t[i].n)
D1[i] = -dot(v1.t[i].p0,v1.t[i].n)
i = { 0,1,2,3 }
for each triangle of each tetrahedron
test any combination of triangle vs triangle intersection between v0,v1
so just loop between all 16 combinations and use triangle vs triangle intersection.
The triangle v0.t[i] vs triangle v1.t[j] intersection boils down to this:
compute intersection between planes
this is obviously ray (for non parallel planes) so simple cross product of the plane normals will give the ray direction
dir = cross(v0.t[i].n,v1.t[j].n)
now it is just matter of finding intersection point belonging to both planes. Exploiting determinant computation directly from the cross product of the normals the ray computation is like this:
// determinants
det=vector_len2(dir);
d0=D0[i]/det;
d1=D1[j]/det;
// position
pos = d0*cross(dir,v1.t[j].n) + d1*cross(v0.t[i].n,dir);
for more info see:
SO/SE: Line of intersection between two planes
Wolfram: Plane-Plane Intersection
compile signed distance intervals of triangle ray intersection for each triangle
so simply compute intersection between ray and each edge line of triangle remembering min and max distance from pos. We do not need the actual point just the scalar distance from pos which is the parameter returned by line/ray intersection.
check if ranges of both triangles overlaps or not
if overlaps than v0,v1 intersect ... if no overlap occurs for all of the 16 tests than v0,v1 does not intersect.
As you can see it is a lot of stuff to compute. My linear algebra and vector math knowledge is very limited to things I use so there is a high chance there might be much better approach for this. I tried a lot of things to ease up this without any luck (like using bbox,bsphere, using more simple test exploiting that both ray and triangle edges are on the same plane etc) but the result was either slower or even wrong (not counting edge cases correctly).
Here my actual C++ implementation:
//---------------------------------------------------------------------------
bool tetrahedrons::intersect_lin_ray(double *a0,double *a1,double *b0,double *db,double &tb)
{
int i0,i1;
double da[3],ta,q;
vector_sub(da,a1,a0); ta=0.0; tb=0.0; i0=0; i1=1;
if (fabs(da[i0])+fabs(db[i0])<=_zero) i0=2;
else if (fabs(da[i1])+fabs(db[i1])<=_zero) i1=2;
q=(da[i0]*db[i1])-(db[i0]*da[i1]);
if (fabs(q)<=_zero) return 0; // no intersection
// intersection ta,tb parameters
ta=divide(db[i0]*(a0[i1]-b0[i1])+db[i1]*(b0[i0]-a0[i0]),q);
tb=divide(da[i0]*(a0[i1]-b0[i1])+da[i1]*(b0[i0]-a0[i0]),q);
if ((ta<0.0)||(ta>1.0)) return 0; // inside line check
return 1;
}
//---------------------------------------------------------------------------
bool tetrahedrons::intersect_vol_vol(_vol4 &v0,_vol4 &v1) // tetrahedron v0 intersect tetrahedron v1 ?
{
int i,j,_ti,_tj;
_fac3 *f0,*f1;
double pos[3],dir[3],p[3],det,D0[4],D1[4],d0,d1,t,ti0,ti1,tj0,tj1;
// planes offset: dot(p,v0.t[i].n)+D0[i] = 0 , dot(p,v1.t[j].n)+D1[j] = 0
for (i=0;i<4;i++)
{
D0[i]=-vector_mul(pnt.pnt.dat+fac.dat[v0.t[i]].p0,fac.dat[v0.t[i]].n);
D1[i]=-vector_mul(pnt.pnt.dat+fac.dat[v1.t[i]].p0,fac.dat[v1.t[i]].n);
}
// plane plane intersection -> ray
for (i=0;i<4;i++)
for (j=0;j<4;j++)
{
f0=fac.dat+v0.t[i];
f1=fac.dat+v1.t[j];
// no common vertex
if ((f0->p0==f1->p0)||(f0->p0==f1->p1)||(f0->p0==f1->p2)) continue;
if ((f0->p1==f1->p0)||(f0->p1==f1->p1)||(f0->p1==f1->p2)) continue;
if ((f0->p2==f1->p0)||(f0->p2==f1->p1)||(f0->p2==f1->p2)) continue;
// direction
vector_mul(dir,f0->n,f1->n);
det=vector_len2(dir);
if (fabs(det)<=_zero) continue; // parallel planes?
d0=D0[i]/det;
d1=D1[j]/det;
// position
vector_mul(p,dir,f1->n); vector_mul(pos,p,d0);
vector_mul(p,f0->n,dir); vector_mul(p,p,d1);
vector_add(pos,pos,p);
// compute intersection edge points
_ti=1; _tj=1;
if (intersect_lin_ray(pnt.pnt.dat+f0->p0,pnt.pnt.dat+f0->p1,pos,dir,t)){ if (_ti) { _ti=0; ti0=t; ti1=t; } if (ti0>t) ti0=t; if (ti1<t) ti1=t; }
if (intersect_lin_ray(pnt.pnt.dat+f0->p1,pnt.pnt.dat+f0->p2,pos,dir,t)){ if (_ti) { _ti=0; ti0=t; ti1=t; } if (ti0>t) ti0=t; if (ti1<t) ti1=t; }
if (intersect_lin_ray(pnt.pnt.dat+f0->p2,pnt.pnt.dat+f0->p0,pos,dir,t)){ if (_ti) { _ti=0; ti0=t; ti1=t; } if (ti0>t) ti0=t; if (ti1<t) ti1=t; }
if (intersect_lin_ray(pnt.pnt.dat+f1->p0,pnt.pnt.dat+f1->p1,pos,dir,t)){ if (_tj) { _tj=0; tj0=t; tj1=t; } if (tj0>t) tj0=t; if (tj1<t) tj1=t; }
if (intersect_lin_ray(pnt.pnt.dat+f1->p1,pnt.pnt.dat+f1->p2,pos,dir,t)){ if (_tj) { _tj=0; tj0=t; tj1=t; } if (tj0>t) tj0=t; if (tj1<t) tj1=t; }
if (intersect_lin_ray(pnt.pnt.dat+f1->p2,pnt.pnt.dat+f1->p0,pos,dir,t)){ if (_tj) { _tj=0; tj0=t; tj1=t; } if (tj0>t) tj0=t; if (tj1<t) tj1=t; }
if ((_ti)||(_tj)) continue;
if ((ti0>=tj0)&&(ti0<=tj1)) return 1;
if ((ti1>=tj0)&&(ti1<=tj1)) return 1;
if ((tj0>=ti0)&&(tj0<=ti1)) return 1;
if ((tj1>=ti0)&&(tj1<=ti1)) return 1;
}
return 0;
};
//---------------------------------------------------------------------------
It is a part of a much larger program. The _zero is just threshold for zero based on min detail size. _fac3 is triangle and _vol4 is tetrahedron. Both points and triangles are indexed from pnt.pnt.dat[] and fac.dat[] dynamic lists. I know is weird but there is a lot going on behind it (like spatial subdivision to segments and more to speed up the processes which is this used for).
the vector_mul(a,b,c) is a=cross(b,c) and a=dot(b,c) product (which depends on c if it is vector or not).
I would rather avoid any precomputed values for each triangle/tetrahedron as even now the classes holds quite a lot of info already (like parent-ship, usage count etc). And as I am bound to Win32 the memory is limited to only around 1.2 GB so any additional stuff will limit the max size of mesh usable.
So what I am looking for is any of these:
some math or coding trick to speed current approach if possible
different faster approach for this
I am bound to BDS2006 Win32 C++ and would rather avoid using 3th party libs.
[Edit1] sample data
Here is tetrahedronized pointcloud as a sample data for testing:
double pnt[192]= // pnt.pnt.dat[pnt.n*3] = { x,y,z, ... }
{
-0.227,0.108,-0.386,
-0.227,0.153,-0.386,
0.227,0.108,-0.386,
0.227,0.153,-0.386,
0.227,0.108,-0.431,
0.227,0.153,-0.431,
-0.227,0.108,-0.431,
-0.227,0.153,-0.431,
-0.227,0.108,0.429,
-0.227,0.153,0.429,
0.227,0.108,0.429,
0.227,0.153,0.429,
0.227,0.108,0.384,
0.227,0.153,0.384,
-0.227,0.108,0.384,
-0.227,0.153,0.384,
-0.023,0.108,0.409,
-0.023,0.153,0.409,
0.023,0.108,0.409,
0.023,0.153,0.409,
0.023,0.108,-0.409,
0.023,0.153,-0.409,
-0.023,0.108,-0.409,
-0.023,0.153,-0.409,
-0.318,0.210,0.500,
-0.318,0.233,0.500,
0.318,0.210,0.500,
0.318,0.233,0.500,
0.318,0.210,-0.500,
0.318,0.233,-0.500,
-0.318,0.210,-0.500,
-0.318,0.233,-0.500,
-0.273,-0.233,0.432,
-0.273,0.222,0.432,
-0.227,-0.233,0.432,
-0.227,0.222,0.432,
-0.227,-0.233,0.386,
-0.227,0.222,0.386,
-0.273,-0.233,0.386,
-0.273,0.222,0.386,
0.227,-0.233,0.432,
0.227,0.222,0.432,
0.273,-0.233,0.432,
0.273,0.222,0.432,
0.273,-0.233,0.386,
0.273,0.222,0.386,
0.227,-0.233,0.386,
0.227,0.222,0.386,
-0.273,-0.233,-0.386,
-0.273,0.222,-0.386,
-0.227,-0.233,-0.386,
-0.227,0.222,-0.386,
-0.227,-0.233,-0.432,
-0.227,0.222,-0.432,
-0.273,-0.233,-0.432,
-0.273,0.222,-0.432,
0.227,-0.233,-0.386,
0.227,0.222,-0.386,
0.273,-0.233,-0.386,
0.273,0.222,-0.386,
0.273,-0.233,-0.432,
0.273,0.222,-0.432,
0.227,-0.233,-0.432,
0.227,0.222,-0.432,
};
struct _fac3 { int p0,p1,p2; double n[3]; };
_fac3 fac[140]= // fac.dat[fac.num] = { p0,p1,p2,n(x,y,z), ... }
{
78, 84, 96, 0.600,-0.800,-0.000,
72, 84, 96, -0.844,-0.003,-0.537,
72, 78, 84, -0.000,1.000,-0.000,
72, 78, 96, -0.000,-0.152,0.988,
6, 84, 96, -0.859,0.336,-0.385,
6, 78, 96, 0.597,-0.801,0.031,
6, 78, 84, 0.746,-0.666,0.000,
6, 72, 96, -0.852,-0.006,-0.523,
6, 72, 84, -0.834,0.151,-0.530,
78, 84,147, 0.020,1.000,-0.000,
72, 84,147, -0.023,-1.000,-0.015,
72, 78,147, -0.000,1.000,0.014,
78, 96,186, 0.546,-0.776,0.316,
6, 96,186, -0.864,0.067,-0.500,
6, 78,186, 0.995,0.014,-0.104,
78, 84,186, 0.980,-0.201,0.000,
6, 84,186, -0.812,0.078,-0.578,
72, 96,186, -0.865,-0.011,-0.501,
6, 72,186, -0.846,0.071,-0.529,
6, 84,147, -0.153,-0.672,-0.724,
6, 72,147, -0.222,-0.975,-0.024,
84,135,147, 0.018,1.000,-0.013,
78,135,147, -0.311,0.924,0.220,
78, 84,135, 0.258,0.966,-0.000,
72,135,147, -0.018,1.000,0.013,
72, 78,135, -0.000,0.995,0.105,
96,132,186, -0.000,-1.000,-0.000,
78,132,186, 0.995,-0.087,-0.056,
78, 96,132, 0.081,-0.256,0.963,
84,132,186, 0.976,-0.209,-0.055,
78, 84,132, 0.995,-0.101,0.000,
84,147,186, -0.190,-0.111,-0.975,
6,147,186, -0.030,-0.134,0.991,
0, 96,186, -0.587,-0.735,-0.339,
0, 72,186, 0.598,0.801,-0.031,
0, 72, 96, -0.992,-0.087,-0.092,
72,147,186, -0.675,-0.737,-0.044,
135,147,189, 0.000,1.000,-0.000,
84,147,189, -0.018,0.980,-0.197,
84,135,189, 0.126,0.992,-0.007,
81, 84,135, -0.183,0.983,-0.023,
78, 81,135, -0.930,-0.000,0.367,
78, 81, 84, 1.000,-0.000,0.000,
105,135,147, -0.000,1.000,0.000,
72,105,147, -0.126,0.992,0.007,
72,105,135, 0.018,0.980,0.197,
72, 81,135, -0.036,0.996,-0.082,
72, 78, 81, -0.000,-0.000,1.000,
96,120,132, -0.000,-1.000,-0.000,
78,120,132, 0.685,-0.246,0.685,
78, 96,120, -0.000,-0.152,0.988,
132,180,186, -0.000,-1.000,0.000,
84,180,186, 0.000,-0.152,-0.988,
84,132,180, 0.995,-0.101,-0.000,
147,150,186, 0.101,0.010,0.995,
84,150,186, -0.100,-0.131,-0.986,
84,147,150, -0.190,-0.019,-0.982,
96,114,186, 0.000,-1.000,0.000,
0,114,186, -0.584,-0.729,-0.357,
0, 96,114, -0.991,0.134,0.000,
0,147,186, -0.144,-0.058,-0.988,
0, 72,147, -0.926,-0.374,-0.052,
72, 96,114, -0.995,-0.101,0.000,
0, 72,114, -0.993,-0.077,-0.093,
75,147,189, -0.001,1.000,-0.012,
75,135,189, 0.018,1.000,-0.001,
75,135,147, -0.016,-1.000,0.012,
147,159,189, -0.000,1.000,-0.000,
84,159,189, -0.000,0.985,-0.174,
84,147,159, -0.025,-0.999,-0.025,
81,135,189, -0.274,0.962,0.015,
81, 84,189, 0.114,0.993,-0.023,
75,105,147, -0.115,-0.993,0.006,
75,105,135, 0.017,-0.983,0.181,
72, 75,147, -0.999,-0.000,-0.051,
72, 75,105, 0.599,-0.000,0.801,
81,105,135, -0.009,0.996,-0.093,
72, 81,105, -0.036,0.991,0.127,
120,126,132, -0.000,-1.000,-0.000,
78,126,132, 0.995,-0.101,-0.000,
78,120,126, -0.000,-0.152,0.988,
0,150,186, 0.101,-0.000,0.995,
0,147,150, -0.000,-0.000,1.000,
144,150,186, 0.000,-1.000,0.000,
84,144,186, -0.091,-0.133,-0.987,
84,144,150, -0.000,0.249,0.968,
147,150,159, -0.705,-0.071,-0.705,
84,150,159, -0.125,-0.100,-0.987,
114,150,186, 0.000,-1.000,0.000,
0,114,150, -0.998,-0.000,-0.059,
72,114,147, -0.995,-0.088,-0.052,
0,114,147, -0.906,-0.365,-0.215,
93,147,189, -0.009,-0.996,-0.093,
75, 93,189, 0.020,1.000,0.000,
75, 93,147, -0.237,-0.971,-0.000,
75, 81,189, -0.000,1.000,-0.012,
75, 81,135, -0.000,-0.995,0.096,
93,159,189, -0.000,-0.987,-0.160,
93,147,159, -0.069,-0.995,-0.069,
84, 93,189, 0.036,0.991,-0.127,
84, 93,159, -0.036,-0.993,-0.113,
84, 87,189, -0.599,-0.000,-0.801,
81, 87,189, -0.120,0.993,-0.000,
81, 84, 87, 1.000,0.000,0.000,
75, 81,105, -0.000,-0.987,0.160,
72, 93,147, -0.183,-0.983,-0.023,
72, 75, 93, -1.000,0.000,-0.000,
72, 75, 81, 0.000,-0.000,1.000,
114,147,150, -0.993,-0.100,-0.059,
144,162,186, 0.000,-1.000,0.000,
84,162,186, -0.000,-0.152,-0.988,
84,144,162, -0.600,0.800,0.000,
144,150,159, 0.000,0.101,0.995,
84,144,159, -0.125,-0.087,-0.988,
144,147,159, -0.707,0.000,-0.707,
144,147,150, -0.000,0.000,1.000,
93,114,147, 0.732,-0.587,-0.346,
72, 93,114, -0.995,-0.100,-0.002,
81, 93,189, 0.022,1.000,-0.014,
75, 81, 93, -0.000,1.000,0.000,
93,144,159, 0.582,-0.140,-0.801,
93,144,147, -0.930,0.000,0.367,
87, 93,189, -0.000,0.987,0.160,
84, 87, 93, -0.000,0.000,-1.000,
84, 93,144, -0.009,-0.238,-0.971,
81, 87, 93, -0.000,1.000,0.000,
114,144,150, -0.000,-1.000,-0.000,
114,144,147, -1.000,0.000,-0.000,
93,144,162, -0.995,-0.096,0.000,
84, 93,162, -0.005,-0.145,-0.989,
93,114,144, -0.995,-0.096,0.000,
72,114,144, -0.995,-0.101,-0.000,
72, 93,144, -0.995,-0.097,-0.002,
90,144,162, -0.995,-0.101,0.000,
90, 93,162, 0.834,0.000,-0.552,
90, 93,144, -0.930,0.000,0.367,
84, 90,162, 0.000,-0.152,-0.988,
84, 90, 93, 0.000,0.000,-1.000,
72, 90,144, -0.995,-0.101,-0.000,
72, 90, 93, -1.000,0.000,-0.000,
};
struct _vol4 { int p0,p1,p2,p3,t[4]; double s[4]; };
_vol4 vol[62]= // vol.dat[vol.num] = { p0,p1,p2,p3,t[0],t[1],t[2],t[3],s[0],s[1],s[2],s[3], ... }
{
72, 78, 96, 84, 0, 1, 2, 3, 1,1,1,1,
78, 84, 96, 6, 4, 5, 6, 0, 1,1,1,-1,
72, 84, 96, 6, 4, 7, 8, 1, -1,1,1,-1,
72, 78, 84,147, 9, 10, 11, 2, 1,1,1,-1,
6, 78, 96,186, 12, 13, 14, 5, 1,1,1,-1,
6, 78, 84,186, 15, 16, 14, 6, 1,1,-1,-1,
6, 72, 96,186, 17, 13, 18, 7, 1,-1,1,-1,
6, 72, 84,147, 10, 19, 20, 8, -1,1,1,-1,
78, 84,147,135, 21, 22, 23, 9, 1,1,1,-1,
72, 78,147,135, 22, 24, 25, 11, -1,1,1,-1,
78, 96,186,132, 26, 27, 28, 12, 1,1,1,-1,
78, 84,186,132, 29, 27, 30, 15, 1,-1,1,-1,
6, 84,186,147, 31, 32, 19, 16, 1,1,-1,-1,
72, 96,186, 0, 33, 34, 35, 17, 1,1,1,-1,
6, 72,186,147, 36, 32, 20, 18, 1,-1,-1,-1,
84,135,147,189, 37, 38, 39, 21, 1,1,1,-1,
78, 84,135, 81, 40, 41, 42, 23, 1,1,1,-1,
72,135,147,105, 43, 44, 45, 24, 1,1,1,-1,
72, 78,135, 81, 41, 46, 47, 25, -1,1,1,-1,
78, 96,132,120, 48, 49, 50, 28, 1,1,1,-1,
84,132,186,180, 51, 52, 53, 29, 1,1,1,-1,
84,147,186,150, 54, 55, 56, 31, 1,1,1,-1,
0, 96,186,114, 57, 58, 59, 33, 1,1,1,-1,
0, 72,186,147, 36, 60, 61, 34, -1,1,1,-1,
0, 72, 96,114, 62, 59, 63, 35, 1,-1,1,-1,
135,147,189, 75, 64, 65, 66, 37, 1,1,1,-1,
84,147,189,159, 67, 68, 69, 38, 1,1,1,-1,
84,135,189, 81, 70, 71, 40, 39, 1,1,-1,-1,
105,135,147, 75, 66, 72, 73, 43, -1,1,1,-1,
72,105,147, 75, 72, 74, 75, 44, -1,1,1,-1,
72,105,135, 81, 76, 46, 77, 45, 1,-1,1,-1,
78,120,132,126, 78, 79, 80, 49, 1,1,1,-1,
147,150,186, 0, 81, 60, 82, 54, 1,-1,1,-1,
84,150,186,144, 83, 84, 85, 55, 1,1,1,-1,
84,147,150,159, 86, 87, 69, 56, 1,1,-1,-1,
0,114,186,150, 88, 81, 89, 58, 1,-1,1,-1,
0, 72,147,114, 90, 91, 63, 61, 1,1,-1,-1,
75,147,189, 93, 92, 93, 94, 64, 1,1,1,-1,
75,135,189, 81, 70, 95, 96, 65, -1,1,1,-1,
147,159,189, 93, 97, 92, 98, 67, 1,-1,1,-1,
84,159,189, 93, 97, 99,100, 68, -1,1,1,-1,
81, 84,189, 87, 101,102,103, 71, 1,1,1,-1,
75,105,135, 81, 76, 96,104, 73, -1,-1,1,-1,
72, 75,147, 93, 94,105,106, 74, -1,1,1,-1,
72, 75,105, 81, 104, 77,107, 75, -1,-1,1,-1,
0,147,150,114, 108, 89, 91, 82, 1,-1,-1,-1,
84,144,186,162, 109,110,111, 84, 1,1,1,-1,
84,144,150,159, 112, 87,113, 85, 1,-1,1,-1,
147,150,159,144, 112,114,115, 86, -1,1,1,-1,
72,114,147, 93, 116,105,117, 90, 1,-1,1,-1,
75, 93,189, 81, 118, 95,119, 93, 1,-1,1,-1,
93,147,159,144, 114,120,121, 98, -1,1,1,-1,
84, 93,189, 87, 122,101,123, 99, 1,-1,1,-1,
84, 93,159,144, 120,113,124,100, -1,-1,1,-1,
81, 87,189, 93, 122,118,125,102, -1,-1,1,-1,
114,147,150,144, 115,126,127,108, -1,1,1,-1,
84,144,162, 93, 128,129,124,111, 1,1,-1,-1,
93,114,147,144, 127,121,130,116, -1,-1,1,-1,
72, 93,114,144, 130,131,132,117, -1,1,1,-1,
93,144,162, 90, 133,134,135,128, 1,1,1,-1,
84, 93,162, 90, 134,136,137,129, -1,1,1,-1,
72, 93,144, 90, 135,138,139,132, -1,1,1,-1,
};
the p? are point indexes 0,3,6,9... from pnt the n is normal s is sign of normal (in case triangle is shared so normals point the same way) and t[4] are indexes of triangles 0,1,2,3,... from fac.
And here a sample test:
bool tetrahedrons::vols_intersect() // test if vol[] intersects each other
{
int i,j;
for (i=0;i<vol.num;i++)
for (j=i+1;j<vol.num;j++,dbg_cnt++)
if (intersect_vol_vol(vol.dat[i],vol.dat[j]))
{
linc=0x800000FF;
if (intersect_vol_vol(vol.dat[j],vol.dat[i])) linc=0x8000FFFF;
lin_add_vol(vol.dat[i]);
lin_add_vol(vol.dat[j]);
return 1;
}
return 0;
}
where dbg_cnt is counter of intersection tests. For this mesh I got this results:
tests | time
------+-------------
18910 | 190-215 [ms]
I called the vols_intersect test 10 times to make the measurements long enough. Of coarse none of placed tetrahedrons in this dataset will intersect (leading to highest time). In the real process (too big to post) which lead to this mesh are the count like this:
intersecting 5
non intersecting 1766
all tests 1771

Finding the minimum value in an array (What's wrong with my code?)

This is for my intro to C++ course. We are currently doing arrays and I'm trying to find the min value for each column of the array. here is what I have:
#include <iostream>
using namespace std;
int main(){
int grade[4][30] = {{76, 70, 80, 90, 100, 83, 61, 63, 64, 65, 97, 69, 70, 79,60, 70, 80, 90, 100, 83, 61, 63, 99, 98, 66, 69, 70, 79},
{74, 70, 80, 90,60, 61, 93, 88, 73, 65, 91, 69, 70, 79, 60, 70, 80, 90, 60, 83, 61, 63, 64, 65, 66, 69, 67, 74},
{72, 70, 80, 90, 99, 84, 62, 63, 99, 65, 66, 69, 70, 79, 60, 70, 80, 90, 99, 83, 61, 63, 64, 65, 66, 69, 70, 77},
{69, 70, 80, 90, 60, 61, 86, 63, 97, 97, 66, 69, 70, 79, 97, 70, 80, 90, 88, 83, 88, 63, 64, 65, 66, 69, 70, 79}};
int a;
for(int x = 0; x < 4; ++x){
a = grade[x][0];
for(int y = 0; y < 30; ++y){
if( a > grade[x][y])
a = grade[x][y];
cout << "a is " << a << " for the " << y << "time" << endl;}
cout << a << endl;}
return 0;
}
My problem is I don't understand why in the last two loops the value turns to 0? The real answer should be 60 for each row.
P.S I used this to find the maximum and it worked, but don't get why it won't work here?
for(int y = 0; y < 30; ++y){
It is because for example your first array contains only 28 explicitly initialized elements and you iterate till 30 (see above). The elements which you didn't initialize yourself are initialized to 0.
Your array initializers have less than 30 numbers. Since your array is declared to take 30 elements, the remaining entries are set to 0.
Since you don't appear to have 0s in your data, you could use 0 as a sentinel to know to stop the loop.

Vector to Matrix

I am new using Eigen library and I am having problems transform/reshape a vector in a matrix.
I am trying to get an specific row of a matrix and convert it as a matrix, but each time that I do that the result is not what I am expecting.
Eigen::Matrix<double, Eigen::Dynamic, Eigen::Dynamic, Eigen::RowMajor> m(8, 9);
m << 11, 12, 13, 14, 15, 16, 17, 18, 19,
21, 22, 23, 24, 25, 26, 27, 28, 29,
31, 32, 33, 34, 35, 36, 37, 38, 39,
41, 42, 43, 44, 45, 46, 47, 48, 49,
51, 52, 53, 54, 55, 56, 57, 58, 59,
61, 62, 63, 64, 65, 66, 67, 68, 69,
71, 72, 73, 74, 75, 76, 77, 78, 79,
81, 82, 83, 84, 85, 86, 87, 88, 89;
std::cout << m << std::endl << std::endl;
Matrix<double,1,Dynamic,RowMajor> B = m.row(0);
std::cout << B << std::endl << std::endl;
Map<Matrix3d,RowMajor> A(B.data(),3,3);
std::cout << A << std::endl << std::endl;
Result
11 14 17
12 15 18
13 16 19
I want:
11 12 13
14 15 16
17 18 19
You dont need to select a row first and then map. Just map directly from m and assign the transpose of map to a matrix A as follows
Matrix3d A = Map<Matrix3d>(m.data()).transpose();
If you don't like transposing then forcing the map to use RowMajor for the destination type works too
Matrix3d A = Map<Matrix<double, 3, 3, RowMajor>>(m.data());
Although, at this small size it doesn't matter. Cheers
You need to get the transpose of the result matrix. I think eigen library is converting a vector to a matrix by picking every n'th element to form a row in a n*n sized vector.

Finding the largest number in each column in an array

Hi guys I wan to build a program with external variable but I have difficulties in displaying the number out when the program is debug.My program is to display the largest number in each column when the time is selected for each column.For example selected 1.00 and the largest number is 98.
First Source File
#include<stdio.h>
void main(void)
{
extern int transitTime[];
extern float time[];
int i;
int number,largest;
printf("Please enter the time leaving TP.\n");
scanf("%d",&number);
largest=time[number-1];
for(i=number-1;i<11*4;i+11)
{
if(number>largest)largest=number;
}
printf("Largest=%d\n",largest);
}
Second Source File
int transitTime[] =
{
88, 67, 90, 12, 34, 65, 100, 78, 56, 77, 85, //bus 8
98, 34, 67, 98, 67, 45, 67, 23, 45, 67, 89, //bus15
88, 67, 90, 12, 34, 65, 100, 78, 56, 77, 85, //22
98, 34, 67, 98, 67, 45, 67, 23, 45, 67, 89, //23
};
float time[]=
{
1.00,1.30,2.00,2.30,3.00,3.30,4.00,4.30,5.00,5.30,6.00
};
Thanks
First method: Loop with the no of elements in the row.
#include <algorithm>
#include <vector>
scanf("%d",&number)
int *it = std::find(time,time+11,number);
largest = *it;
for(int *i=it;i<11*4;i = i+11)
{
if(*i >largest)largest=*i;
}