|  |  |  | @ -86,15 +86,15 @@ const real_t* od = in + 5; | 
			
		
	
		
			
				
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					|  |  |  |  | /* Compute outputs: */ | 
			
		
	
		
			
				
					|  |  |  |  | out[0] = xd[1]; | 
			
		
	
		
			
				
					|  |  |  |  | out[1] = ((od[0]+(real_t)(1.0000000000000000e+00))*xd[2]); | 
			
		
	
		
			
				
					|  |  |  |  | out[2] = (((od[0]+(real_t)(1.0000000000000000e+00))*(real_t)(4.0000000000000000e+00))*u[0]); | 
			
		
	
		
			
				
					|  |  |  |  | out[1] = ((od[0]+(real_t)(5.0000000000000000e+00))*xd[2]); | 
			
		
	
		
			
				
					|  |  |  |  | out[2] = (((od[0]+(real_t)(5.0000000000000000e+00))*(real_t)(4.0000000000000000e+00))*u[0]); | 
			
		
	
		
			
				
					|  |  |  |  | out[3] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[4] = (real_t)(1.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[5] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[6] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[7] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[8] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[9] = (od[0]+(real_t)(1.0000000000000000e+00)); | 
			
		
	
		
			
				
					|  |  |  |  | out[9] = (od[0]+(real_t)(5.0000000000000000e+00)); | 
			
		
	
		
			
				
					|  |  |  |  | out[10] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[11] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[12] = (real_t)(0.0000000000000000e+00); | 
			
		
	
	
		
			
				
					|  |  |  | @ -102,7 +102,7 @@ out[13] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[14] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[15] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[16] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[17] = ((od[0]+(real_t)(1.0000000000000000e+00))*(real_t)(4.0000000000000000e+00)); | 
			
		
	
		
			
				
					|  |  |  |  | out[17] = ((od[0]+(real_t)(5.0000000000000000e+00))*(real_t)(4.0000000000000000e+00)); | 
			
		
	
		
			
				
					|  |  |  |  | } | 
			
		
	
		
			
				
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					|  |  |  |  | void acado_evaluateLSQEndTerm(const real_t* in, real_t* out) | 
			
		
	
	
		
			
				
					|  |  |  | @ -112,14 +112,14 @@ const real_t* od = in + 4; | 
			
		
	
		
			
				
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					|  |  |  |  | /* Compute outputs: */ | 
			
		
	
		
			
				
					|  |  |  |  | out[0] = xd[1]; | 
			
		
	
		
			
				
					|  |  |  |  | out[1] = ((((real_t)(2.0000000000000000e+00)*od[0])+(real_t)(1.0000000000000000e+00))*xd[2]); | 
			
		
	
		
			
				
					|  |  |  |  | out[1] = ((((real_t)(2.0000000000000000e+00)*od[0])+(real_t)(5.0000000000000000e+00))*xd[2]); | 
			
		
	
		
			
				
					|  |  |  |  | out[2] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[3] = (real_t)(1.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[4] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[5] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[6] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[7] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | out[8] = (((real_t)(2.0000000000000000e+00)*od[0])+(real_t)(1.0000000000000000e+00)); | 
			
		
	
		
			
				
					|  |  |  |  | out[8] = (((real_t)(2.0000000000000000e+00)*od[0])+(real_t)(5.0000000000000000e+00)); | 
			
		
	
		
			
				
					|  |  |  |  | out[9] = (real_t)(0.0000000000000000e+00); | 
			
		
	
		
			
				
					|  |  |  |  | } | 
			
		
	
		
			
				
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