from collections import Counter def solve(): N = int(input()) R = list(map(int,input().split())) C = list(map(int,input().split())) cntC = Counter(C) uni_val = [] mul_val = [] for v,c in cntC.items(): if c == 1: uni_val.append(v) else: mul_val.append(v) smul = set(mul_val) pR = [None]*(N+1) uL = len(uni_val) mul_vidx = [] uni_vidx = [] for i in range(N): if C[i] in smul: mul_vidx.append((C[i], i)) else: uni_vidx.append((C[i], i)) for i in range(N): pR[R[i]] = i # print(pR) grid = [[R[i]]*N for i in range(N)] rowidxs = [] for v,jdx in uni_vidx: rowidx = (pR[v] + 1) % N rowidxs.append(rowidx) grid[rowidx][jdx] = v use = set([i for i in range(N)]) for idx in rowidxs: use.discard(idx) use = list(use) # print(use) mL = len(mul_vidx) off = 0 # print(mul_vidx) appear = set() for nowidx, (v, jdx) in enumerate(mul_vidx): # print(v, jdx) # print(use[nowidx]) if use[nowidx] == pR[v] and not v in appear: off += 1 appear.add(v) grid[(use[nowidx] + off) % N][jdx] = v # print # for i in range(N): # for j in range(N): # print(grid[i][j],end=" ") # print() # valid_check for i in range(N): if not R[i] == Counter(grid[i]).most_common()[0][0]: print(-1) return for j in range(N): ncol = [] for i in range(N): ncol.append(grid[i][j]) if not C[j] == Counter(ncol).most_common()[0][0]: print(-1) return # print for i in range(N): for j in range(N): print(grid[i][j],end=" ") print() T = int(input()) for _ in range(T): solve()